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    <title>Physics &#187; Ultrafast &amp; Terahertz Photonics: Publications (tag [perovskites])</title>
    <link>https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/</link>
    <description>The latest from Physics &#187; Ultrafast &amp; Terahertz Photonics: Publications (tag [perovskites])</description>
    <language>en-GB</language>
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    <category>2019</category>
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    <category>2024</category>
    <category>2025</category>
    <category>2026</category>
    <category>biomedical</category>
    <category>highlight</category>
    <category>Lloyd-Hughes</category>
    <category>MacPherson</category>
    <category>Milot</category>
    <category>nanomaterials</category>
    <category>perovskites</category>
    <category>photoluminescence</category>
    <category>review</category>
    <category>semiconductors</category>
    <category>THz components</category>
    <category>THz imaging</category>
    <category>THz spectroscopy</category>
    <category>ultrafast</category>
    <category>Untagged</category>
    <item>
      <title>An Ultrafast Investigation of the Surface and Bulk Passivation Effects of Phenylethylammonium in CH&lt;sub&gt;3&lt;/sub&gt;NH&lt;sub&gt;3&lt;/sub&gt;PbI&lt;sub&gt;3&lt;/sub&gt; Thin Films</title>
      <link>https://advanced.onlinelibrary.wiley.com/doi/10.1002/adom.202402011</link>
      <description>&lt;div class="news-thumbnail" style="float: left; margin-right: 10px; margin-bottom: 5px;"&gt;&lt;img class="thumbnail" width="100" height="100" src="https://warwick.ac.uk/sitebuilder2/file/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications?sbrPage=%2Ffac%2Fsci%2Fphysics%2Fresearch%2Fcondensedmatt%2Fultrafastphotonics%2Fpublications&amp;newsItem=8ac672c59b07d9a6019b1cce8b5e2b05" alt="image"&gt;&lt;/div&gt;&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/Hutchinson2025.png?maxWidth=150" alt="2D-3D" style="margin-right: 10px;" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p class="mb-0"&gt;&lt;strong&gt;Jake D. Hutchinson&lt;/strong&gt;, Marcin Giza, &lt;strong&gt;Nathaniel P. Gallop&lt;/strong&gt;, Benjamin Vella, &lt;strong&gt;Edward Butler-Caddle, Shaoyang Wang, James Lloyd-Hughes,&lt;/strong&gt; Pablo Docampo and &lt;strong&gt;Rebecca L Milot&lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;Adv. Optical Materials &lt;strong&gt;13&lt;/strong&gt; e02011 &lt;span class="cit-pageRange"&gt; &lt;/span&gt;(Dec 2025) &lt;button class="abstractButton" onclick="location.href='https://advanced.onlinelibrary.wiley.com/doi/10.1002/adom.202402011';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='https://advanced.onlinelibrary.wiley.com/doi/epdf/10.1002/adom.202402011';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('Hutchinson2025')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="Hutchinson2025" style="display: none;"&gt;The incorporation of Ruddlesden&amp;ndash;Popper (RP)/3D perovskite heterostructures into photovoltaic cells has been shown to increase both the efficiency and stability of the devices. Here, a series of methylammonium lead triiodide (MAPbI3) thin films treated with varying 2-phenylethylammonium (PEA) concentrations are investigated with static and ultrafast spectroscopic techniques to reveal the mechanisms of the observed performance benefits. Transient absorption spectroscopy is employed to elucidate the effect of a surface RP layer on the excited state of the MAPbI3 films and reveal that several different RP structures are formed and participate in the charge-carrier dynamics. The passivation effects of PEA are investigated with optical pump&amp;ndash;terahertz probe (OPTP) experiments using a variety of excitation conditions to simultaneously probe the surface and bulk recombination dynamics. Fitting models to the OPTP data for each excitation scheme allows the material parameters that govern the ultrafast dynamics to be quantified. It is found that as the PEA concentration increases, the surface recombination velocity exhibits a monotonic decrease, suggesting the RP layer is effective at passivating surface traps. Furthermore, the bulk monomolecular recombination rate is also found to decrease with the addition of PEA, indicating that the benefits of this passivation approach are not limited to the upper surface of the MAPbI3 films.&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1002/adom.202402011" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>THz spectroscopy</category>
      <category>Milot</category>
      <category>perovskites</category>
      <category>Lloyd-Hughes</category>
      <category>ultrafast</category>
      <category>highlight</category>
      <category>2025</category>
      <pubDate>Sun, 14 Dec 2025 12:20:00 GMT</pubDate>
      <guid isPermaLink="false">8ac672c59b07d9a6019b1cce8b5e2b05</guid>
    </item>
    <item>
      <title>Structural chemistry of the n = 3 Dion&#8211;Jacobson phases: controlling polarity and band gap</title>
      <link>https://pubs.rsc.org/en/Content/ArticleLanding/2025/TA/D5TA02587G</link>
      <description>&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/ali2025.gif?maxWidth=200" alt="Shaping" style="margin-right: 10px;" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p&gt;A. Ali, V. Cascos, F.G. Pritchard, J.R.R. Verlet, N.R. Sutherland, &lt;strong&gt;J. Woolley, J. Lloyd-Hughes&lt;/strong&gt;, M. Avdeev, A. Beeny, S.J. Clark and E.E. McCabe &lt;br /&gt;J. Mater. Chem. A &lt;strong&gt;13&lt;/strong&gt; 23073 &lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;strong&gt;&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt; &lt;/span&gt;&lt;span class="cit-pageRange"&gt;&lt;/span&gt;&lt;strong&gt;&lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;/strong&gt; (Apr 2025) &lt;button class="abstractButton" onclick="location.href='https://doi.org/10.1039/D5TA02587G';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/ali2025.pdf';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('ali2025')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="ali2025" style="display: none;"&gt;The Dion&amp;ndash;Jacobson phases are increasingly gaining attention for their photoactivity and potential applications as photocatalysts and sensors, in addition to their polar structures. The structure &amp;ndash; composition &amp;ndash; property relationships for the n = 3 phases (of general formula A&#8242;A2B3O10e.g., A&#8242; = Rb, Cs; A = Ca, Sr, Ba; B = Nb, Ta) are not well understood because of the lack of reliable structural models for this series. Our combined experimental and computational study addresses this by determining and explaining the complex structural chemistry of these materials, and provides a guide to allow structures and properties of new materials to be predicted and understood. We find that both A&#8242; and A cations determine the tilts of BO6 octahedra and hence small A2+ ions tend to give materials with larger band gaps. The polar structures observed for A = Ca phases result from &#8220;proper&#8221; mechanisms and the role of the second-order Jahn&amp;ndash;Teller effect of the B = Nb, Ta cations is discussed.&lt;/div&gt;
&lt;div align="left"&gt;&lt;img src="https://api.elsevier.com/content/abstract/citation-count?doi=10.1039/D5TA02587G&amp;amp;httpAccept=image%2Fjpeg&amp;amp;apiKey=23942728d429d8cd622400c4a7485a23" border="0" /&gt;&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1039/D5TA02587G" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>perovskites</category>
      <category>Lloyd-Hughes</category>
      <category>2025</category>
      <pubDate>Thu, 17 Apr 2025 09:50:00 GMT</pubDate>
      <guid isPermaLink="false">8ac672c7987b511401988955f63e32f3</guid>
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    <item>
      <title>Distinguishing carrier transport and interfacial recombination at perovskite/transport-layer interfaces using ultrafast spectroscopy and numerical simulation</title>
      <link>https://journals.aps.org/prapplied/abstract/10.1103/PhysRevApplied.22.024013</link>
      <description>&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/butler-caddle2024.png?maxWidth=300" alt="Charge transport layers" style="margin-right: 10px;" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;E. Butler-Caddle,&lt;/strong&gt; K.D.G.I. Jayawardena, A. Wijesekara, &lt;strong&gt;R.L. Milot&lt;/strong&gt; and &lt;strong&gt;J. Lloyd-Hughes&lt;/strong&gt; &lt;br /&gt;Phys. Rev. Applied &lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;strong&gt;22&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt; &lt;/span&gt;&lt;span class="cit-pageRange"&gt;024103&lt;/span&gt;&lt;strong&gt;&lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;/strong&gt; (Aug 2024) &lt;button class="abstractButton" onclick="location.href='https://doi.org/10.1103/PhysRevApplied.22.024013';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/butler-caddle2024.pdf';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('butler-caddle2024')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="butler-caddle2024" style="display: none;"&gt;In perovskite solar cells, photovoltaic action is created by charge transport layers (CTLs) either side of the light-absorbing metal halide perovskite semiconductor. Hence, the rates for desirable charge extraction and unwanted interfacial recombination at the perovskite-CTL interfaces play a critical role for device efficiency. Here, the electrical properties of perovskite-CTL bilayer heterostructures are obtained using ultrafast terahertz and optical studies of the charge carrier dynamics after pulsed photoexcitation, combined with a physical model of charge carrier transport that includes the prominent Coulombic forces that arise after selective charge extraction into a CTL, and cross-interfacial recombination. The charge extraction velocity at the interface and the ambipolar diffusion coefficient within the perovskite are determined from the experimental decay profiles for heterostructures with three of the highest-performing CTLs, namely C60, PCBM and Spiro-OMeTAD. Definitive targets for the further improvement of devices are deduced: fullerenes deliver fast electron extraction, but suffer from a large rate constant for cross-interface recombination or hole extraction. Conversely, Spiro-OMeTAD exhibits slow hole extraction but does not increase the perovskite&#8217;s surface recombination rate, likely contributing to its success in solar cell devices.&lt;/div&gt;
&lt;div align="left"&gt;&lt;img src="https://api.elsevier.com/content/abstract/citation-count?doi=10.1103/PhysRevApplied.22.024013&amp;amp;httpAccept=image%2Fjpeg&amp;amp;apiKey=23942728d429d8cd622400c4a7485a23" border="0" /&gt;&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1103/PhysRevApplied.22.024013" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>THz spectroscopy</category>
      <category>photoluminescence</category>
      <category>Milot</category>
      <category>2024</category>
      <category>perovskites</category>
      <category>Lloyd-Hughes</category>
      <category>ultrafast</category>
      <pubDate>Tue, 06 Aug 2024 15:12:00 GMT</pubDate>
      <guid isPermaLink="false">8a17841a9126f10e0191283fcb962d6c</guid>
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    <item>
      <title>Temperature-Dependent Structural and Optoelectronic Properties of the Layered Perovskite 2-Thiophenemethylammonium Lead Iodide</title>
      <link>https://pubs.acs.org/doi/10.1021/acs.jpcc.4c03221</link>
      <description>&lt;div class="news-thumbnail" style="float: left; margin-right: 10px; margin-bottom: 5px;"&gt;&lt;img class="thumbnail" width="100" height="100" src="https://warwick.ac.uk/sitebuilder2/file/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications?sbrPage=%2Ffac%2Fsci%2Fphysics%2Fresearch%2Fcondensedmatt%2Fultrafastphotonics%2Fpublications&amp;newsItem=8a17841b910d330101912470859000c0" alt="image"&gt;&lt;/div&gt;&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/Deveikis2024.jpeg?maxWidth=150" alt="ThMAPbI" style="margin-right: 10px;" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p&gt;&lt;span class="accordion-tabbed__tab-mobile  accordion__closed"&gt;&lt;strong&gt;Justas Deveikis&lt;/strong&gt;, Marcin Giza, David Walker, Jie Liu, Claire Wilson, &lt;strong&gt;Nathaniel P. Gallop&lt;/strong&gt;, Pablo Docampo, &lt;strong&gt;James Lloyd-Hughes&lt;/strong&gt; and &lt;strong&gt;Rebecca L. Milot&lt;/strong&gt;&lt;/span&gt;&lt;br /&gt;J. Phys. Chem. C &lt;span class="citation_volume"&gt;&lt;strong&gt;128 &lt;/strong&gt;&lt;/span&gt;13108&lt;span class="cit-issue"&gt;&lt;/span&gt;&lt;span class="cit-issue"&gt;&lt;strong&gt;&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt;&amp;nbsp;&lt;/span&gt;&lt;/span&gt;&lt;span class="cit-pageRange"&gt; &lt;/span&gt;(July 2024) &lt;button class="abstractButton" onclick="location.href='https://doi.org/10.1021/acs.jpcc.4c03221';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='deveikis2024.pdf';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('Deveikis2024')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="Deveikis2024" style="display: none;"&gt;Improved knowledge of the influence of temperature upon layered perovskites is essential to enable perovskite-based devices to operate over a broad temperature range and to elucidate the impact of structural changes upon the optoelectronic properties. We examined the Ruddlesden&amp;ndash;Popper layered perovskite 2-thiophenemethylammonium lead iodide (ThMA2PbI4) and observed a structural phase transition between a high- and a low-temperature phase at 220&amp;thinsp;K using temperature-dependent X-ray diffraction, UV&amp;ndash;visible absorption, and photoluminescence (PL) spectroscopy. The structural phase transition altered the tilt pattern of the inorganic octahedra layer, modifying the absorption and PL spectra. Further, we found a narrow and intense additional PL peak in the low-temperature phase, which we assigned to radiative emission from a defect-bound exciton state. In both phases we determined the thermal expansion coefficient and found values similar to those of cubic 3D perovskites, i.e., larger than those of typical substrates such as glass. These results demonstrate that the organic spacer plays a critical role in controlling the temperature-dependent structural and optoelectronic properties of layered perovskites and suggests more widely that strain management strategies may be needed to fully utilize layered perovskites in device applications.&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1021/acs.jpcc.4c03221" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>photoluminescence</category>
      <category>Milot</category>
      <category>2024</category>
      <category>perovskites</category>
      <category>Lloyd-Hughes</category>
      <category>highlight</category>
      <pubDate>Mon, 05 Aug 2024 21:27:00 GMT</pubDate>
      <guid isPermaLink="false">8a17841b910d330101912470859000c0</guid>
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      <title>Untangling free carrier and exciton dynamics in layered hybrid perovskites using ultrafast optical and terahertz spectroscopy</title>
      <link>https://iopscience.iop.org/article/10.1088/2053-1591/ad14c2</link>
      <description>&lt;div class="news-thumbnail" style="float: left; margin-right: 10px; margin-bottom: 5px;"&gt;&lt;img class="thumbnail" width="100" height="100" src="https://warwick.ac.uk/sitebuilder2/file/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications?sbrPage=%2Ffac%2Fsci%2Fphysics%2Fresearch%2Fcondensedmatt%2Fultrafastphotonics%2Fpublications&amp;newsItem=8ac672c494a5ec430194acf2cc504c4c" alt="image"&gt;&lt;/div&gt;&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/Balogun2024.jpg?maxWidth=150" alt="PEA" style="margin-right: 10px;" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p class="mb-0"&gt;&lt;strong&gt; &lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;Folusho Helen Balogun&lt;/span&gt;&lt;/span&gt;&lt;/strong&gt;, &lt;strong&gt;&lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;Nathaniel P Gallop&lt;/span&gt;&lt;/span&gt;&lt;/strong&gt;, &lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;Dumitru Sirbu&lt;/span&gt;&lt;/span&gt;, &lt;strong&gt;&lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;Jake D Hutchinson&lt;/span&gt;&lt;/span&gt;&lt;/strong&gt;, &lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;Nathan Hill&lt;/span&gt;&lt;/span&gt;, &lt;strong&gt;&lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;Jack M Woolley&lt;/span&gt;&lt;/span&gt;&lt;/strong&gt;, &lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;David Walker&lt;/span&gt;&lt;/span&gt;, &lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;Stephen York&lt;/span&gt;&lt;/span&gt;, &lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;Pablo Docampo&lt;/span&gt;&lt;/span&gt; and &lt;strong&gt;&lt;span itemtype="http://schema.org/Person" itemprop="author" class="nowrap"&gt;&lt;span itemprop="name"&gt;Rebecca L Milot&lt;/span&gt;&lt;/span&gt; &lt;/strong&gt;&lt;/p&gt;
&lt;p&gt;Mater. Res. Express &lt;strong&gt;11&lt;/strong&gt; 025503 &lt;span class="cit-pageRange"&gt; &lt;/span&gt;(Feb 2024) &lt;button class="abstractButton" onclick="location.href='https://doi.org/10.1088/2053-1591/ad14c2';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='https://iopscience.iop.org/article/10.1088/2053-1591/ad14c2/pdf';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('Balogun2024')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="Balogun2024" style="display: none;"&gt;Layered hybrid perovskites (LPKs) are promising as alternatives or additives to 3D metal halide perovskites for optoelectronic applications including photovoltaic cells, LEDs and lasers due to their increased stability. However, high exciton binding energies in these materials mean that excitons are the majority species under the operating conditions of many devices. Although the efficiency of devices that incorporate LPKs has been increasing, much is still unknown about the interplay of excitons and free charge-carriers in these materials, which is vital information for understanding how optoelectronic properties dictate device efficiency. In this work, we employ optical pump/THz probe spectroscopy (OPTP) and visible transient absorption spectroscopy (TAS) to analyse the optoelectronic properties and charge-carrier dynamics of phenylethylammonium lead iodide (PEA)2PbI4. By combining these techniques, we are able to disentangle the contributions from excitons and free charge-carriers. We observe fast cooling of free charge-carriers and exciton formation on a timescale of &#8764;400 fs followed by slower bimolecular recombination of residual free charge-carriers with a rate constant k2 &#8764; 109 cm3s&#8722;1. Excitons recombine via two monomolecular processes with lifetimes t1 &#8764; 11 ps and t2 &#8764; 83 ps. Furthermore, we detect signatures of exciton&amp;ndash;phonon coupling in the transient absorption kinetic traces. These findings provide new insight into the interplay between free charge-carriers and excitons as well as a possible mechanism to further understand the charge-carrier dynamics in LPKs.&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1088/2053-1591/ad14c21" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>THz spectroscopy</category>
      <category>nanomaterials</category>
      <category>Milot</category>
      <category>2024</category>
      <category>perovskites</category>
      <category>ultrafast</category>
      <pubDate>Thu, 01 Feb 2024 06:30:00 GMT</pubDate>
      <guid isPermaLink="false">8ac672c494a5ec430194acf2cc504c4c</guid>
    </item>
    <item>
      <title>Terahertz Emission via Optical Rectification in a Metal-Free Perovskite Crystal</title>
      <link>https://doi.org/10.1021/acsphotonics.3c00918</link>
      <description>&lt;div class="news-thumbnail" style="float: left; margin-right: 10px; margin-bottom: 5px;"&gt;&lt;img class="thumbnail" width="100" height="100" src="https://warwick.ac.uk/sitebuilder2/file/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications?sbrPage=%2Ffac%2Fsci%2Fphysics%2Fresearch%2Fcondensedmatt%2Fultrafastphotonics%2Fpublications&amp;newsItem=8a1785d88b8b07d6018b8ef67207070b" alt="image"&gt;&lt;/div&gt;&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/Gallop2023.jpeg?maxWidth=150" alt="mDABCO" style="margin-right: 10px;" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p&gt;&lt;span class="accordion-tabbed__tab-mobile  accordion__closed"&gt;&lt;strong&gt;Nathaniel P. Gallop&lt;/strong&gt;, Dumitru Sirbu, David Walker, &lt;strong&gt;James Lloyd-Hughes&lt;/strong&gt;, Pablo Docampo and &lt;strong&gt;Rebecca L. Milot&lt;/strong&gt;&lt;/span&gt;&lt;br /&gt;ACS Photonics&lt;span class="citation_volume"&gt;&lt;b&gt; 10&lt;/b&gt;&lt;/span&gt;&lt;span class="cit-issue"&gt;&lt;/span&gt;&lt;span class="cit-issue"&gt;&lt;strong&gt;&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt; &lt;/span&gt;&lt;span class="cit-pageRange"&gt;4022&lt;/span&gt;&lt;/span&gt;&lt;span class="cit-pageRange"&gt;&lt;/span&gt;&lt;strong&gt;&lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt;&lt;/span&gt;&lt;span class="cit-pageRange"&gt; &lt;/span&gt;(October 2023) &lt;button class="abstractButton" onclick="location.href='https://doi.org/10.1021/acsphotonics.3c00918';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='https://pubs.acs.org/doi/epdf/10.1021/acsphotonics.3c00918';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('Gallop2023')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="Gallop2023" style="display: none;"&gt;We report on the emission of high-intensity pulsed terahertz radiation from the metal-free halide perovskite single crystal methyl-DABCO ammonium iodide (MDNI) under femtosecond illumination. The power and angular dependence of the THz output implicate optical rectification of the 800 nm pump as the mechanism of THz generation. Further characterization finds that, for certain crystal orientations, the angular dependence of THz emission is modulated by phonon resonances attributable to the motion of the methyl-DABCO moiety. At maximum, the THz emission spectrum of MDNI is free from significant phonon resonances, resulting in THz pulses with a temporal width of &amp;lt;900 fs and a peak-to-peak electric field strength of approximately 0.8 kV cm&amp;ndash;1&#9472;2 orders of magnitude higher than any other reported halide perovskite emitters. Our results point toward metal-free perovskites as a promising new class of THz emitters that brings to bear many of the advantages enjoyed by other halide perovskite materials. In particular, the broad tunability of optoelectronic properties and ease of fabrication of perovskite materials opens up the possibility of further optimizing the THz emission properties within this material class.&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1021/acsphotonics.3c00918" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>THz spectroscopy</category>
      <category>Milot</category>
      <category>perovskites</category>
      <category>Lloyd-Hughes</category>
      <category>2023</category>
      <category>ultrafast</category>
      <category>highlight</category>
      <pubDate>Thu, 02 Nov 2023 07:36:00 GMT</pubDate>
      <guid isPermaLink="false">8a1785d88b8b07d6018b8ef67207070b</guid>
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    <item>
      <title>High-bandwidth perovskite photonic sources on silicon</title>
      <link>https://dx.doi.org/10.1038/s41566-023-01242-9</link>
      <description>&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/Aobo.png?maxWidth=350" alt="LED" style="margin-right: 10px;" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p&gt;A. Ren, H. Wang, L. Dai, J. Xia, &lt;strong&gt;E. Butler-Caddle&lt;/strong&gt;, J.A. Smith, ... S.A. Hindmarsh, A.M. Sanchez, &lt;strong&gt;J. Lloyd-Hughes&lt;/strong&gt;, S. J Sweeney, ... and Wei Zhang&lt;br /&gt;Nature Photonics&lt;span class="cit-issue"&gt;&lt;span class="cit-pageRange"&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class="cit-pageRange"&gt;&lt;/span&gt;&lt;strong&gt;&lt;span class="citation_volume"&gt;&lt;/span&gt; &lt;span class="cit-volume"&gt;17&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-pageRange"&gt;&lt;/span&gt;&lt;strong&gt;&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt;, &lt;/span&gt;&lt;span class="cit-pageRange"&gt;798&amp;ndash;805 &lt;/span&gt;(July 2023) &lt;button class="abstractButton" onclick="location.href='https://doi.org/10.1038/s41566-023-01242-9';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/ren2023.pdf';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('ren2023')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="ren2023" style="display: none;"&gt;Light-emitting diodes (LEDs) are ubiquitous in modern society, with applications spanning from lighting and displays to medical diagnostics and data communications. Metal-halide perovskites are promising materials for LEDs because of their excellent optoelectronic properties and solution processability. Although research has progressed substantially in optimizing their external quantum efficiency, the modulation characteristics of perovskite LEDs remain unclear. Here we report a holistic approach for realizing fast perovskite photonic sources on silicon based on tailoring alkylammonium cations in perovskite systems. We reveal the recombination behaviour of charged species at various carrier density regimes relevant for their modulation performance. By integrating a Fabry&amp;ndash;P&#233;rot microcavity on silicon, we demonstrate perovskite devices with efficient light outcoupling. We achieve device modulation bandwidths of up to 42.6&amp;thinsp;MHz and data rates above 50&amp;thinsp;Mbps, with further analysis suggesting that the bandwidth may exceed gigahertz levels. The principles developed here will support the development of perovskite light sources for next-generation data-communication architectures. The demonstration of solution-processed perovskite emitters on silicon substrates also opens up the possibility of integration with micro-electronics platforms.&lt;/div&gt;
&lt;div align="left"&gt;&lt;img src="https://api.elsevier.com/content/abstract/citation-count?doi=10.1038/s41566-023-01242-9&amp;amp;httpAccept=image%2Fjpeg&amp;amp;apiKey=23942728d429d8cd622400c4a7485a23" border="0" /&gt;&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1038/s41566-023-01242-9" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>THz spectroscopy</category>
      <category>nanomaterials</category>
      <category>photoluminescence</category>
      <category>perovskites</category>
      <category>Lloyd-Hughes</category>
      <category>2023</category>
      <category>ultrafast</category>
      <category>highlight</category>
      <pubDate>Sun, 13 Aug 2023 18:37:00 GMT</pubDate>
      <guid isPermaLink="false">8a17841a89d4febb0189f030773a4dd7</guid>
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    <item>
      <title>Resolving the Ultrafast Charge Carrier Dynamics of 2D and 3D Domains within a Mixed 2D/3D Lead-Tin Perovskite</title>
      <link>https://onlinelibrary.wiley.com/doi/full/10.1002/adfm.202305736</link>
      <description>&lt;div class="news-thumbnail" style="float: left; margin-right: 10px; margin-bottom: 5px;"&gt;&lt;img class="thumbnail" width="100" height="100" src="https://warwick.ac.uk/sitebuilder2/file/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications?sbrPage=%2Ffac%2Fsci%2Fphysics%2Fresearch%2Fcondensedmatt%2Fultrafastphotonics%2Fpublications&amp;newsItem=8a17841a898c2c3f0189cf9632b94bf6" alt="image"&gt;&lt;/div&gt;&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/Hutchinson2023.png?maxWidth=150" alt="CNT" style="margin-right: 10px;" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p&gt;&lt;span class="accordion-tabbed__tab-mobile  accordion__closed"&gt;&lt;strong&gt;Jake D. Hutchinson&lt;/strong&gt;, Edoardo Ruggeri, &lt;strong&gt;Jack M. Woolley&lt;/strong&gt;, G&#233;raud Delport, Samuel D. Stranks, &lt;strong&gt;Rebecca L. Milot&lt;/strong&gt;&lt;/span&gt;&lt;br /&gt;Advanced Functional Materials&lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;span class="cit-issue"&gt;&lt;/span&gt;&lt;span class="cit-issue"&gt;&lt;strong&gt;&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt; &lt;/span&gt;&lt;span class="cit-pageRange"&gt;&lt;/span&gt;&lt;/span&gt;&lt;span class="cit-pageRange"&gt;2305736&lt;/span&gt;&lt;strong&gt;&lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt;, &lt;/span&gt;&lt;span class="cit-pageRange"&gt; &lt;/span&gt;(August 2023) &lt;button class="abstractButton" onclick="location.href='https://onlinelibrary.wiley.com/doi/full/10.1002/adfm.202305736';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='https://onlinelibrary.wiley.com/doi/epdf/10.1002/adfm.202305736';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('hutchinson2023')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="hutchinson2023" style="display: none;"&gt;Mixed 2D/3D perovskite materials are of particular interest to the photovoltaics and light- emitting diode (LED) communities due to their impressive opto-electronic properties alongside improved moisture stability compared to conventional 3D perovskite absorbers. Here, a mixed lead-tin perovskite containing distinct, self-assembled domains of either 3D structures or highly phase-pure Ruddlesden&amp;ndash;Popper 2D structures is studied. The complex energy landscape of the material is revealed with ultrafast optical transient absorption measurements. It is shown that charge transfer between these microscale domains only occurs on nanosecond timescales, consistent with the large size of the domains. Using optical pump-terahertz probe spectroscopy, the effective charge-carrier mobility is shown to be an intermediary between analogous pure 2D and 3D perovskites. Furthermore, detailed analysis of the free carrier recombination dynamics is presented. By combining results from a range of excitation wavelengths within a full dynamic model of the photoexcited carrier population, it is shown that the 2D domains in the film exhibit remarkably similar carrier dynamics to the 3D domains, suggesting that long-range charge-transport should not be impeded by the heterogeneous structure of the material.&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1088/1361-6528/ace1f6" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>THz spectroscopy</category>
      <category>Milot</category>
      <category>perovskites</category>
      <category>2023</category>
      <category>ultrafast</category>
      <pubDate>Mon, 07 Aug 2023 10:41:00 GMT</pubDate>
      <guid isPermaLink="false">8a17841a898c2c3f0189cf9632b94bf6</guid>
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    <item>
      <title>Terahertz photoconductance dynamics of semiconductors from sub-nanosecond to millisecond timescales</title>
      <link>https://aip.scitation.org/doi/10.1063/5.0130721</link>
      <description>&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/butler-caddle2022.png?maxWidth=300" alt="E-OPTP" style="margin-right: 10px;" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p&gt;&lt;strong&gt;E. Butler-Caddle,&lt;/strong&gt; N.E. Grant, S.L. Pain, J.D. Murphy, K.D.G.I. Jayawardena and &lt;strong&gt;J. Lloyd-Hughes&lt;/strong&gt; &lt;br /&gt;Appl. Phys. Lett. &lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;strong&gt;122&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt; &lt;/span&gt;&lt;span class="cit-pageRange"&gt;012101&lt;/span&gt;&lt;strong&gt;&lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;/strong&gt; (Jan 2023) &lt;button class="abstractButton" onclick="location.href='https://doi.org/10.1063/5.0130721';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/butler-caddle2022.pdf';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('butler-caddle2022')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="butler-caddle2022" style="display: none;"&gt;Optical pump terahertz probe spectroscopy (OPTP) is a versatile non-contact technique that measures transient photoconductance decays with femtosecond temporal resolution. However, its maximum temporal range is limited to only a few nanoseconds by the mechanical delay lines used. We extended the temporal range of OPTP to milliseconds and longer while retaining sub-nanosecond resolution. A separate pump laser was electrically synchronized to the probe pulses, allowing the pump&amp;ndash;probe delay to be controlled with an electronic delay generator. We demonstrated the capabilities of this technique by examining the photoconductance decays of semiconductors with lifetimes ranging over six orders of magnitude: III-Vs, metal halide perovskites, germanium, and silicon. A direct comparison of results on silicon from OPTP and inductively coupled photoconductance decay highlighted the higher spatial and temporal resolution of OPTP, which allowed in-plane and out-of-plane carrier diffusion to be studied.&lt;/div&gt;
&lt;div align="left"&gt;&lt;img src="https://api.elsevier.com/content/abstract/citation-count?doi=10.1063/5.0130721&amp;amp;httpAccept=image%2Fjpeg&amp;amp;apiKey=23942728d429d8cd622400c4a7485a23" border="0" /&gt;&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1063/5.0130721" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>THz spectroscopy</category>
      <category>perovskites</category>
      <category>Lloyd-Hughes</category>
      <category>2023</category>
      <category>ultrafast</category>
      <category>highlight</category>
      <pubDate>Tue, 03 Jan 2023 17:17:00 GMT</pubDate>
      <guid isPermaLink="false">8a1785d785589383018578a363242c2d</guid>
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      <title>Predicting Solar Cell Performance from Terahertz and Microwave Spectroscopy</title>
      <link>https://doi.org/10.1002/aenm.202102776</link>
      <description>&lt;p&gt;&lt;img src="https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/aenm202102776-gra-0001-m.webp" alt="THz round robin" style="margin-right: 10px;" width="300" border="0" align="right" /&gt;&lt;/p&gt;
&lt;p&gt;H. Hempel, T.J. Savenjie, M. Stolterfoht, J. Neu, M. Failla, V.C. Paingad, P. Ku&#382;el, E.J. Heilweil, J.A. Spies, M. Schleuning, J. Zhao, D. Friedrich, K. Schwarzburg, L.D.A. Siebbeles, P. D&#246;rflinger, V. Dyakonov, R. Katoh, M.J. Hong, J.G. Labram, &lt;strong&gt;M. Monti, E. Butler-Caddle, J. Lloyd-Hughes&lt;/strong&gt;, M.M. Taheri, J.B. Baxter, T.J. Magnanelli, S. Luo, J.M. Cardon, S. Ardo, T. Unold &lt;br /&gt;Advanced Energy Materials &lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;strong&gt;&lt;span class="cit-volume"&gt;&lt;/span&gt;&lt;/strong&gt;&lt;span class="cit-issue"&gt; &lt;/span&gt;&lt;strong&gt;&lt;span class="cit-pageRange"&gt;2102776&lt;/span&gt;&lt;span class="citation_volume"&gt;&lt;/span&gt;&lt;/strong&gt; (Feb 2022) &lt;button class="abstractButton" onclick="location.href='https://doi.org/10.1002/aenm.202102776';"&gt;web&lt;/button&gt; &lt;button class="abstractButton" onclick="location.href='https://warwick.ac.uk/fac/sci/physics/research/condensedmatt/ultrafastphotonics/publications/hempel2022.pdf';"&gt;pdf&lt;/button&gt; &lt;button class="abstractButton" onclick="showHide('hempel2022')"&gt;Show abstract&lt;/button&gt;&lt;/p&gt;
&lt;div id="hempel2022" style="display: none;"&gt;Bringing together the expertise from fifteen laboratories the current-voltage characteristics of a solar cell are modeled using contactless terahertz and microwave measurements. To this end, the impact of measurement conditions, alternate interpretations, and experimental inter-laboratory variations are discussed. For a neat (Cs,FA,MA)Pb(I,Br)3 thin film, the implied resistance-free JV-curve and the fill factor losses by its finite mobility are revealed.&lt;/div&gt;
&lt;div align="left"&gt;&lt;img src="https://api.elsevier.com/content/abstract/citation-count?doi=10.1002/aenm.202102776&amp;amp;httpAccept=image%2Fjpeg&amp;amp;apiKey=23942728d429d8cd622400c4a7485a23" border="0" /&gt;&lt;/div&gt;
&lt;div class="altmetric-embed" data-badge-popover="right" data-badge-type="2" data-doi="10.1002/aenm.202102776" data-hide-no-mentions="true"&gt;&lt;/div&gt;</description>
      <category>photoluminescence</category>
      <category>perovskites</category>
      <category>Lloyd-Hughes</category>
      <category>2022</category>
      <category>ultrafast</category>
      <pubDate>Tue, 01 Mar 2022 11:13:00 GMT</pubDate>
      <guid isPermaLink="false">8a17841b7f4044ef017f452f53b40dde</guid>
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