Silicon quantum dot based solar cells: addressing the issues of doping, voltage and current transport

Authors

Conibeer, Gavin
Green, Martin A.
Koenig, Dirk
Perez-Wurfl, Ivan
Huang, Shujuan
Hao, Xiaojing
Di, Dawei
Shi, Lei
Shrestha, Santosh
Puthen-Veetil, Binesh

Journal Title

Journal ISSN

Volume Title

Publisher

Access Statement

Research Projects

Organizational Units

Journal Issue

Abstract

Silicon quantum dot (Si QD) solar cells offer the potential to tune the effective band gap through quantum confinement and hence allow fabrication of optimised tandem devices in one growth run in a thin film process. Previous work in our group has shown how such cells can be fabricated by sputtering of thin layers of silicon rich oxide sandwiched between a stoichiometric oxide that on annealing crystallise to form Si QDs of uniform and controllable size. Doping multilayers with P and B allows formation of a rectifying junction with an effective band gap of 1.8 eV, which can give an open circuit voltage (V(OC)) of almost 500 mV. However, the doping behaviour of P and B in these QD materials is not well understood. In addition P and B have big but opposite effects on QD crystallisation, with P(B) forming larger (smaller) QDs than for undoped material. Two possible models for the doping mechanisms in these materials are explored: one relying on doping of a sub-oxide region around the Si QDs and the other based on the differing nucleation effects of P and B. In addition initial results on hetero-interfaces in the QD superstructure are assessed as a means to improve vertical current transport, and the effects of hydrogenation on improving V(OC) by passivating defects. Routes to incorporating these explanations for doping and other structural improvements are discussed as means of optimising the performance of these Si QD cells. Copyright (C) 2010 John Wiley & Sons, Ltd.

Description

Citation

Source

Progress in Photovoltaics: Research and Applications

Book Title

Entity type

Publication

Access Statement

License Rights

Restricted until