<?xml version="1.0" encoding="UTF-8"?><?xml-stylesheet type="text/xsl" href="static/style.xsl"?><OAI-PMH xmlns="http://www.openarchives.org/OAI/2.0/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.openarchives.org/OAI/2.0/ http://www.openarchives.org/OAI/2.0/OAI-PMH.xsd"><responseDate>2026-09-23T22:00:47Z</responseDate><request verb="GetRecord" identifier="oai:www.repository.cam.ac.uk:1810/375249" metadataPrefix="uketd_dc">https://api.repository.cam.ac.uk/server/oai/request</request><GetRecord><record><header><identifier>oai:www.repository.cam.ac.uk:1810/375249</identifier><datestamp>2025-09-25T01:40:56Z</datestamp><setSpec>com_1810_198332</setSpec><setSpec>com_1810_256064</setSpec><setSpec>col_1810_214775</setSpec></header><metadata><uketd_dc:uketddc xmlns:uketd_dc="http://naca.central.cranfield.ac.uk/ethos-oai/2.0/" xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:dcterms="http://purl.org/dc/terms/" xmlns:uketdterms="http://naca.central.cranfield.ac.uk/ethos-oai/terms/" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:doc="http://www.lyncode.com/xoai" xsi:schemaLocation="http://naca.central.cranfield.ac.uk/ethos-oai/2.0/ http://naca.central.cranfield.ac.uk/ethos-oai/2.0/uketd_dc.xsd">
   <dc:title>Charge and Thermoelectric Transport in Metal Halide Perovskite Semiconductors</dc:title>
   <dc:identifier xsi:type="dcterms:DOI">https://doi.org/10.17863/CAM.112999</dc:identifier>
   <dc:creator>Zhang, Youcheng</dc:creator>
   <uketdterms:authoridentifier xsi:type="uketdterms:ORCID">0000000342339769</uketdterms:authoridentifier>
   <uketdterms:advisor>Sirringhaus, Henning</uketdterms:advisor>
   <dcterms:abstract>Metal halide perovskites exhibit optoelectronic properties that hold significant potential for applications in photovoltaics, light-emitting diodes, photodetectors, X-ray detectors, and field-effect transistors (FETs). Rapid and substantial enhancements in the performance of perovskite-based optoelectronic devices have been achieved, that recent records indicate power conversion efficiency (PCE) of single-junction solar cells exceeding 26%, and FET mobility surpassing 50 cm&lt;sup>2&lt;/sup>V&lt;sup>-1&lt;/sup>s&lt;sup>-1&lt;/sup>. These advancements in metal halide perovskites have been paralleled by efforts to understand the material's fundamental chemistry and physical properties from a bottom-up perspective, providing extensive theoretical optimization guidance.

In this thesis, efforts to improve device performance have been paralleled by a focus to understand the underlying charge transport physics in these lead-based and tin-based perovskite systems. In Chapter 3, we identified a strong causal relationship between metal contact reaction and non-ideal FET characteristics in CsFAMAPbI&lt;sub>3&lt;/sub> perovskite FETs. Prolonged channel bias leads to enhanced n-type doping at the contact interface, resulting in increased device conductivity. This research also extended to investigating electroactive A-site molecules on charge transport in alkyl-diammonium 2D/3D perovskite FETs (Chapter 4.1), and pure *n*=1 2D perovskite diodes (Chapter 4.2). Carbazole alkylammonium molecules were found to accept transferred holes and increase electron-hole pair separation, consequently enhancing charge carrier mobility in the out-of-plane direction.

Tin-based perovskites have gained significant attention since 2022, as they are found to be less susceptible to ion migration and exhibit *p*-type FET mobility exceeding 10 cm&lt;sup>2&lt;/sup>V&lt;sup>-1&lt;/sup>s&lt;sup>-1&lt;/sup>. Here, we optimized tin perovskite compositions with mixed A-site cations and de-doping additives, achieving *p*-type FET mobility above 2 cm&lt;sup>2&lt;/sup>V&lt;sup>-1&lt;/sup>s&lt;sup>-1&lt;/sup> at room temperature. However, the reported high FET mobility exceeding 10 cm&lt;sup>2&lt;/sup>V&lt;sup>-1&lt;/sup>s&lt;sup>-1&lt;/sup> in these tin-based perovskites is sometimes controversial. In Chapter 4.3, we conducted a comprehensive analysis of the impact of device geometry on mobility extraction and demonstrated more reliable mobility results using gated four-point probe measurements on tin perovskite FETs.

In Chapter 5, we conducted a comprehensive analysis of charge transport characterization in tin-based perovskite systems. We precisely measured the hole concentration and mobility of CsSnI&lt;sub>3&lt;/sub> films across varying grain sizes and Pb-substitution ratios. A transition in charge transport mechanisms was observed, shifting from predominantly band-like in larger grains to being dominated by grain boundary effects in smaller grains and films alloyed with Pb. Films with the largest grains exhibited a Hall effect mobility of 60 cm&lt;sup>2&lt;/sup>V&lt;sup>-1&lt;/sup>s&lt;sup>-1&lt;/sup> at room temperature and between 100-160 cm&lt;sup>-2&lt;/sup>V&lt;sup>-1&lt;/sup>s&lt;sup>-1&lt;/sup> at low temperatures, while maintaining a constant hole density of 1.6x10&lt;sup>-19&lt;/sup> cm&lt;sup>-3&lt;/sup>. This transition is thoroughly explained using a mixed transport model that integrates band-like, grain boundary thermal activation, and grain boundary site semi-metallic or impurity scattering mechanisms.

To assess their thermoelectric performance and probe their electronic structure, we measured the temperature-dependent Seebeck coefficient. From a Seebeck coefficient of 85 μV K&lt;sup>-1&lt;/sup> in CsSnI&lt;sub>3&lt;/sub> we derived a DOS effective mass of 0.25 to 0.3*m*&lt;sub>e&lt;/sub>, which remains consistent regardless of temperature and grain size and is slightly higher in samples with Pb-substitution. Finally, with thermal conductivity measurements, our best CsSnI&lt;sub>3&lt;/sub> film exhibited a high thermoelectric power factor of 118 μW m&lt;sup>-1&lt;/sup>K&lt;sup>-2&lt;/sup> and a thermoelectric figure-of-merit of 0.11 at room temperature. We demonstrate that enhancing sample grain size and crystallinity is a viable strategy for optimizing the thermoelectric performance of tin perovskites.</dcterms:abstract>
   <uketdterms:institution>University of Cambridge</uketdterms:institution>
   <dcterms:issued>2024-06-15</dcterms:issued>
   <dc:type>Thesis</dc:type>
   <uketdterms:qualificationlevel>Doctoral</uketdterms:qualificationlevel>
   <uketdterms:qualificationname>Doctor of Philosophy (PhD)</uketdterms:qualificationname>
   <dc:language>eng</dc:language>
   <dcterms:isReferencedBy xsi:type="dcterms:URI">https://www.repository.cam.ac.uk/handle/1810/375249</dcterms:isReferencedBy>
   <uketdterms:embargotype>embargo</uketdterms:embargotype>
   <uketdterms:embargodate>2026-10-24</uketdterms:embargodate>
   <dc:identifier xsi:type="dcterms:URI">https://www.repository.cam.ac.uk/bitstreams/c80c4f2b-3991-45d4-8d21-5a54752d64b2/download</dc:identifier>
   <uketdterms:checksum xsi:type="uketdterms:MD5">6fd51b5cb5083702b71e4ad04c4ac111</uketdterms:checksum>
   <dcterms:license>https://www.repository.cam.ac.uk/bitstreams/52bec90c-8614-4f82-8a8d-e6d1107ef289/download</dcterms:license>
   <uketdterms:checksum xsi:type="uketdterms:MD5">87eda9de84448d1f82354d60eee3eb5f</uketdterms:checksum>
   <dc:rights>https://creativecommons.org/licenses/by/4.0/</dc:rights>
   <dc:subject>Charge Transport Physics</dc:subject>
   <dc:subject>Doping</dc:subject>
   <dc:subject>Field-Effect Transistors</dc:subject>
   <dc:subject>Hall-Effect</dc:subject>
   <dc:subject>Metal Halide Perovskites</dc:subject>
   <dc:subject>Optoelectronics</dc:subject>
   <dc:subject>Thermoelectric Physics</dc:subject>
</uketd_dc:uketddc>
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