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CMP
Credit: Jack Hobhouse

Prof Henry Snaith FRS

Professor of Physics

Sub department

  • Condensed Matter Physics

Research groups

  • Snaith group
  • Advanced Device Concepts for Next-Generation Photovoltaics
Henry.Snaith@physics.ox.ac.uk
Robert Hooke Building, room G21
  • About
  • Publications

Metal halide perovskite tandem and multiple-junction photovoltaics

Nature Reviews Chemistry Springer Nature 1:12 (2017) 0095

Authors:

Giles E Eperon, Maximilian T Hörantner, Henry J Snaith
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A Conversation with Henry Snaith

ACS Energy Letters American Chemical Society (ACS) 2:11 (2017) 2552-2554

Authors:

Filippo De Angelis, Prashant V Kamat
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Large-area, highly uniform evaporated formamidinium lead triiodide thin-films for solar cells

ACS Energy Letters American Chemical Society 2 (2017) 2799-2804

Authors:

Juliane Borchert, Rebecca Milot, Jay B Patel, Christopher L Davies, Adam Wright, Laura Martinez Maestro, Henry J Snaith, Laura M Hertz, Michael Johnston

Abstract:

Perovskite thin-film solar cells are one of the most promising emerging renewable energy technologies because of their potential for low-cost, large-area fabrication combined with high energy conversion efficiencies. Recently, formamidinium lead triiodide (FAPbI3) and other formamidinium (CH(NH2)2) based perovskites have been explored as interesting alternatives to methylammonium lead triiodide (MAPbI3) because they exhibit better thermal stability. However, at present a major challenge is the scale-up of perovskite solar cells from small test-cells to full solar modules. We show that coevaporation is a scalable method for the deposition of homogeneous FAPbI3 thin films over large areas. The method allows precise control over film thickness and results in highly uniform, pinhole-free layers. Our films exhibited a high charge-carrier mobility of 26 cm2 V–1s–1, excellent optical properties, and a bimolecular recombination constant of 7 × 10–11 cm3 s–1. Solar cells fabricated using these vapor-deposited layers within a regular device architecture produced stabilized power conversion efficiencies of up to 14.2%. Thus, we demonstrate that efficient FAPbI3 solar cells can be vapor-deposited, which opens up a pathway toward large-area stable perovskite photovoltaics.
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Improving energy and visual performance in offices using building integrated perovskite-based solar cells: A case study in Southern Italy

Applied Energy Elsevier 205 (2017) 834-846

Authors:

Alessandro Cannavale, Laura Ierardi, Maximilian Hörantner, Giles E Eperon, Henry J Snaith, Ubaldo Ayr, Francesco Martellotta
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Room temperature atomic layer deposited Al2O3 on CH3NH3PbI3 characterized by synchrotron-based X-ray photoelectron spectroscopy

Nuclear Instruments and Methods in Physics Research Section B Beam Interactions with Materials and Atoms Elsevier 411 (2017) 49-52

Authors:

Małgorzata Kot, Chittaranjan Das, Karsten Henkel, Konrad Wojciechowski, Henry J Snaith, Dieter Schmeisser
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