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Excellent Long-Range Charge-Carrier Mobility in 2D Perovskites

dc.contributor.authorKober-Czerny, Manuelen
dc.contributor.authorMotti, Silvia Genaroen
dc.contributor.authorHolzhey, Philippeen
dc.contributor.authorWenger, Bernarden
dc.contributor.authorLim, Jongchulen
dc.contributor.authorHerz, Laura Mariaen
dc.contributor.authorSnaith, Henry Jamesen
dc.date.accessioned2025-03-22T16:39:52Z
dc.date.available2025-03-22T16:39:52Z
dc.date.issued2022-09-05en
dc.description.abstractThe use of layered, 2D perovskites can improve the stability of metal halide perovskite thin films and devices. However, the charge carrier transport properties in layered perovskites are still not fully understood. Here, the sum of the electron and hole mobilities (Σμ) in thin films of the 2D perovskite PEA2PbI4, through transient electronically contacted nanosecond-to-millisecond photoconductivity measurements, which are sensitive to long-time, long-range (micrometer length scale) transport processes is investigated. After careful analysis, accounting for both early-time recombination and the evolution of the exciton-to-free-carrier population, a long-range mobility of 8.0 +/− 0.6 cm2 (V s)–1, which is ten times greater than the long-range mobility of a comparable 3D material FA0.9Cs0.1PbI3 is determined. These values are compared to ultra-fast transient time-resolved THz photoconductivity measurements, which are sensitive to early-time, shorter-range (tens of nm length scale) mobilities. Mobilities of 8 and 45 cm2 (V s)–1 in the case of the PEA2PbI4 and FA0.9Cs0.1PbI3, respectively, are obtained. This previously unreported concurrence between the long-range and short-range mobility in a 2D material indicates that the polycrystalline thin films already have single-crystal-like qualities. Hence, their fundamental charge carrier transport properties should aid device performance.en
dc.description.sponsorshipThis work was part funded by EPSRC, UK under EP/S004947/1 and EP/V010840/1. Financial support by the DFG via SPP2196 Priority Program (CH 1672/3\u20101) is gratefully acknowledged. J.L. was partially supported by the National Research Foundation of Korea (NRF\u20102021M3H4A1A02057007). The research leading to these results had received funding from the European Union's Horizon 2020 research and innovation program under grant agreements no. 764787 of the MAESTRO project and no. 861985 of the PEROCUBE project.en
dc.description.statustrueen
dc.identifier.otherScopus:85132779054en
dc.identifier.urihttps://dspace-test.anu.edu.au/handle/1885/733729888
dc.identifier.urlhttp://www.scopus.com/inward/record.url?scp=85132779054&partnerID=8YFLogxKen
dc.language.isoEnglishen
dc.rightsPublisher Copyright: © 2022 The Authors. Advanced Functional Materials published by Wiley-VCH GmbH.en
dc.sourceAdvanced Functional Materialsen
dc.subject2D Ruddlesden–Popper perovskitesen
dc.subjectcharge carrier transporten
dc.subjectmobilityen
dc.subjectthin filmsen
dc.titleExcellent Long-Range Charge-Carrier Mobility in 2D Perovskitesen
dc.typeArticleen
local.contributor.affiliationKober-Czerny, Manuel; University of Oxforden
local.contributor.affiliationMotti, Silvia Genaro; University of Oxforden
local.contributor.affiliationHolzhey, Philippe; University of Oxforden
local.contributor.affiliationWenger, Bernard; University of Oxforden
local.contributor.affiliationLim, Jongchul; University of Oxforden
local.contributor.affiliationHerz, Laura Maria; University of Oxforden
local.contributor.affiliationSnaith, Henry James; University of Oxforden
local.identifier.citationvolume32en
local.identifier.doi10.1002/adfm.202203064en
local.identifier.pure93451405-2186-4a3f-aa70-8f0e855db63fen
local.type.statusPublisheden

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