Loughborough University
Browse
2020 Inert gas bubble formation_Proc_ Roy_ Soc A.pdf (2.87 MB)

Inert gas bubble formation in magnetron sputtered thin-film CdTe solar cells

Download (2.87 MB)
journal contribution
posted on 2020-07-30, 09:33 authored by Peter Hatton, Ali AbbasAli Abbas, Piotr Kaminski, Sibel Yilmaz, Michael Watts, Michael WallsMichael Walls, Pooja GoddardPooja Goddard, Roger Smith
Cadmium telluride (CdTe) solar cells are deposited in current production using evaporation-based tech- niques. Fabricating CdTe solar cells using magnetron sputtering would have the advantage of being more cost-efficient. Here, we show that such deposition results in the incorporation of the magnetron working gas Ar, within the films. Post deposition processing with CdCl 2 improves cell efficiency and during which stacking faults are removed. The Ar then accumulates into clusters leading to the creation of voids and blisters on the surface. Using molecular dynamics, the penetration threshold energies are determined for both Ar and Xe, with CdTe in both zinc-blende and wurtzite phases. These calculations show that more Ar than Xe can penetrate into the growing film with most penetration across the (111) surface. The mechanisms and energy barriers for interstitial Ar and Xe diffusion in zinc-blende are determined. Barriers are reduced near existing clusters, increasing the probability of capture-based cluster growth. Barriers in wurtzite are higher with non-Arrhenius behaviour observed. This provides an explanation for the increase in the size of voids observed after stacking fault removal. Blister exfoliation was also modelled, showing the formation of shallow craters with a raised rim.

Funding

OSI - One Step Interconnect for Thin Film PV Modules : Karen Muncey

OTH Supersolar hub - Extension : EP/P02484X/1

IAA Michael Walls - EPG Oct 16

EPSRC Supergen SuperSolar Hub (grant no. EP/J017361/1)

History

School

  • Mechanical, Electrical and Manufacturing Engineering
  • Science

Department

  • Chemistry
  • Mathematical Sciences

Research Unit

  • Centre for Renewable Energy Systems Technology (CREST)

Published in

Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences

Volume

476

Issue

2239

Publisher

The Royal Society

Version

  • VoR (Version of Record)

Rights holder

© The Authors

Publisher statement

This is an open access article. It is published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.

Acceptance date

2020-06-24

Publication date

2020-07-29

Copyright date

2020

ISSN

1364-5021

eISSN

1471-2946

Language

  • en

Depositor

Prof Michael Walls. Deposit date: 30 July 2020

Article number

20200056

Usage metrics

    Loughborough Publications

    Categories

    No categories selected

    Licence

    Exports

    RefWorks
    BibTeX
    Ref. manager
    Endnote
    DataCite
    NLM
    DC