ORCID as entered in ROS

Select Publications
2010, 'The Global Evolution of PV technology', presented at 2nd Chinese Renewable Energy Conference and Solar Power Exhibition, Wuxi, China, 17 September 2010 - 19 September 2010
,2010, 'Possible Evolutionary Paths for Photovoltaics', presented at Symposium C, E-MRS 2010 Fall Meeting, Warsaw, Poland, 13 September 2010 - 17 September 2010
,2009, 'PV Technology Roadmap for Future Generation', presented at Malaysia National Photovoltaic Conference 2009, Putrajaya, Malaysia, 17 November 2009
,2009, 'Third Generation Photovoltaics: Progress Over The Last Decade', presented at 19th International Photovoltaic Science and engineering Conference, ICC Jeju, Korea, 09 November 2009 - 13 November 2009
,2009, 'Solar Photovoltaics: What Does the Future Hold?', presented at 2nd World Materials Summit, Suzhou, China, 12 October 2009 - 15 October 2009
,2009, 'Photovoltaics and Nanophotonics', presented at Nanophotonics Down Under 2009 Devices and Applications (SMONP 2009), Melbourne, 21 June 2009 - 24 June 2009
,2021, Australian Centre for Advanced Photovoltaics Annual Report 2020, ACAP, Sydney, 2021, http://dx.doi.org/10.26190/unsworks/28137, https://www.acap.org.au/post/acap-s-annual-reports-2013-present
,2020, Australian Centre for Advanced Photovoltaics Annual Report 2019, ACAP, Sydney, Milestone 9, http://dx.doi.org/10.26190/unsworks/28139, https://www.acap.org.au/post/acap-s-annual-reports-2013-present
,2019, Australian Centre for Advanced Photovoltaics Annual Report 2018, ACAP, Sydney, Milestone 8, http://dx.doi.org/10.26190/unsworks/28140, https://www.acap.org.au/post/acap-s-annual-reports-2013-present
,2024, Adamantine semiconductor and uses thereof, Patent No. United States - 11881536
,2023, A copper-based chalcogenide photovoltaic device and a method of forming the same, China, Patent No. ZL2017800390146
,2022, A copper-based chalcogenide photovoltaic device and a method of forming the same, Patent No. United States - 11322634
,2018, A method for forming a virtual germanium substrate using a laser, Patent No. US patent no.10115854; Taiwan patent no. I699817, http://patft.uspto.gov/netacgi/nph-Parser?Sect2=PTO1&Sect2=HITOFF&p=1&u=/netahtml/PTO/search-bool.html&r=1&f=G&l=50&d=PALL&RefSrch=yes&Query=US-10115854-B2
,2018, A high efficiency stacked solar cell, Patent No. Taiwan patent no. 1631721; China patent no. ZL201480044318.8, https://twpat3.tipo.gov.tw/tipotwoc/tipotwekm?!!FR_I631721
,2018, A method of forming a germanium layer on a silicon substrate and a photovoltaic device including a germanium layer, Patent No. I613832, https://twpat3.tipo.gov.tw/tipotwoc/tipotwekm?!!FR_I613832
,2017, Metal adhesion, United States, Patent No. 9613814, http://patft.uspto.gov/netacgi/nph-Parser?Sect2=PTO1&Sect2=HITOFF&p=1&u=/netahtml/PTO/search-bool.html&r=1&f=G&l=50&d=PALL&RefSrch=yes&Query=US-9613814-B2
,2017, Improved metal adhesion, South Korea, Patent No. 10-1703205
,2016, A method of forming a germanium layer on a silicon substrate and a photovoltaic device including a germanium layer, USA, Patent No. 9508889
,2000, Improved optical design for photo-cell, Patent No.
,1997, Multiple Layer Thin Film Solar Cell with Buried Contacts, Patent No.
,2023, Emergence of flexible kesterite solar cells: progress and perspectives, http://dx.doi.org/10.21203/rs.3.rs-2425590/v1
,2022, Unveiling microscopic carrier loss mechanisms in 12% efficient Cu2ZnSnSe4 solar cells, http://dx.doi.org/10.21203/rs.3.rs-1274090/v1
,2020, Singlet fission and tandem solar cells reduce thermal degradation and enhance lifespan, http://arxiv.org/abs/2003.05565v2
,2011, Electrical Properties of Conductive Ge Nanocrystal Thin Films Fabricated by Low Temperature In-situ Growth, http://dx.doi.org/10.48550/arxiv.1101.3053
,2006, Phononic engineering with nanostructures for hot carrier solar cells, http://dx.doi.org/10.48550/arxiv.cond-mat/0611045
,Defect Control for 12.5% Efficiency Cu <sub>2</sub>ZnSnSe <sub>4</sub> Kesterite Thin-Film Solar Cells by Engineering of Local Chemical Environment, http://dx.doi.org/10.2139/ssrn.3542579
,2024, Methylammonium‐Free Ink for Low‐Temperature Crystallization of α‐FAPbI3 Perovskite (Adv. Energy Mater. 30/2024), Wiley, http://dx.doi.org/10.1002/aenm.202470124
,2014, Cover Picture: Radio frequency magnetron sputtered epitaxial Cu2ZnSnS4 thin film on ZnS(100) (Phys. Status Solidi RRL 5/2014), Wiley, http://dx.doi.org/10.1002/pssr.201470526
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