Literature DB >> 29528229

Mesoscopic Oxide Double Layer as Electron Specific Contact for Highly Efficient and UV Stable Perovskite Photovoltaics.

Mohammad Mahdi Tavakoli1,2, Fabrizio Giordano1, Shaik Mohammed Zakeeruddin1, Michael Grätzel1.   

Abstract

The solar to electric power conversion efficiency (PCE) of perovskite solar cells (PSCs) has recently reached 22.7%, exceeding that of competing thin film photovoltaics and the market leader polycrystalline silicon. Further augmentation of the PCE toward the Shockley-Queisser limit of 33.5% warrants suppression of radiationless carrier recombination by judicious engineering of the interface between the light harvesting perovskite and the charge carrier extraction layers. Here, we introduce a mesoscopic oxide double layer as electron selective contact consisting of a scaffold of TiO2 nanoparticles covered by a thin film of SnO2, either in amorphous (a-SnO2), crystalline (c-SnO2), or nanocrystalline (quantum dot) form (SnO2-NC). We find that the band gap of a-SnO2 is larger than that of the crystalline (tetragonal) polymorph leading to a corresponding lift in its conduction band edge energy which aligns it perfectly with the conduction band edge of both the triple cation perovskite and the TiO2 scaffold. This enables very fast electron extraction from the light perovskite, suppressing the notorious hysteresis in the current-voltage ( J-V) curves and retarding nonradiative charge carrier recombination. As a result, we gain a remarkable 170 mV in open circuit photovoltage ( V oc) by replacing the crystalline SnO2 by an amorphous phase. Because of the quantum size effect, the band gap of our SnO2-NC particles is larger than that of bulk SnO2 causing their conduction band edge to shift also to a higher energy thereby increasing the V oc. However, for SnO2-NC there remains a barrier for electron injection into the TiO2 scaffold decreasing the fill factor of the device and lowering the PCE. Introducing the a-SnO2 coated mp-TiO2 scaffold as electron extraction layer not only increases the V oc and PEC of the solar cells but also render them resistant to UV light which forebodes well for outdoor deployment of these new PSC architectures.

Entities:  

Year:  2018        PMID: 29528229     DOI: 10.1021/acs.nanolett.7b05469

Source DB:  PubMed          Journal:  Nano Lett        ISSN: 1530-6984            Impact factor:   11.189


  6 in total

1.  Influences of dielectric constant and scan rate on hysteresis effect in perovskite solar cell with simulation and experimental analyses.

Authors:  Jun-Yu Huang; You-Wei Yang; Wei-Hsuan Hsu; En-Wen Chang; Mei-Hsin Chen; Yuh-Renn Wu
Journal:  Sci Rep       Date:  2022-05-13       Impact factor: 4.996

2.  Numerical Simulation of 30% Efficient Lead-Free Perovskite CsSnGeI3-Based Solar Cells.

Authors:  Hussein Sabbah
Journal:  Materials (Basel)       Date:  2022-04-29       Impact factor: 3.748

3.  Charge Accumulation, Recombination, and Their Associated Time Scale in Efficient (GUA) x (MA)1-x PbI3-Based Perovskite Solar Cells.

Authors:  Daniel Prochowicz; Mohammad Mahdi Tavakoli; Anwar Q Alanazi; Suverna Trivedi; Hadi Tavakoli Dastjerdi; Shaik M Zakeeruddin; Michael Grätzel; Pankaj Yadav
Journal:  ACS Omega       Date:  2019-10-03

Review 4.  Recent Progress in Growth of Single-Crystal Perovskites for Photovoltaic Applications.

Authors:  Suverna Trivedi; Daniel Prochowicz; Nishi Parikh; Apurba Mahapatra; Manoj Kumar Pandey; Abul Kalam; Mohammad Mahdi Tavakoli; Pankaj Yadav
Journal:  ACS Omega       Date:  2021-01-05

5.  cPCN-Regulated SnO2 Composites Enables Perovskite Solar Cell with Efficiency Beyond 23.

Authors:  Zicheng Li; Yifeng Gao; Zhihao Zhang; Qiu Xiong; Longhui Deng; Xiaochun Li; Qin Zhou; Yuanxing Fang; Peng Gao
Journal:  Nanomicro Lett       Date:  2021-04-01

6.  Inkjet-Printed Electron Transport Layers for Perovskite Solar Cells.

Authors:  Dongli Lu; Wei Zhang; Lars Kloo; Liubov Belova
Journal:  Materials (Basel)       Date:  2021-12-08       Impact factor: 3.623

  6 in total

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