Sustainability evaluations on material consumption for terawatt‐scale manufacturing of silicon‐based tandem solar cells

Author:

Wang Li1,Zhang Yuchao1,Kim Moonyong1ORCID,Wright Matthew2,Underwood Robert1,Bonilla Ruy Sebastian2,Hallam Brett1ORCID

Affiliation:

1. UNSW Sydney Sydney NSW Australia

2. Department of Materials University of Oxford Oxford UK

Abstract

AbstractHigh‐efficiency silicon‐based tandem solar cells will likely drive the push towards terawatt (TW) scale PV manufacturing on the pathway to net zero emissions by 2050. In this work, we provide a comprehensive analysis of material consumption and sustainability issues for future tandem solar cells. First, we analyse the material consumption and sustainable manufacturing capacity of a variety of potential candidates for the top cell in a silicon‐based tandem cell. We show that III‐V, CIGS and CdTe are not suitable to support TW‐scale manufacturing. Perovskites thus present the most sustainable approach, as long as indium is not required in the cell structure. Next, we turn our attention to the silicon bottom cell architecture by comparing PERC, TOPCon and SHJ. Although tandem cells can generally reduce silver consumption relative to single junction silicon cells due to the more favourable JMP/VMP ratio, the PERC cell architecture could allow for significantly reduced Ag consumption compared with both TOPCon and SHJ by relying on Al for the rear p‐type contact. In order to drive a rapid shift towards TW‐scale manufacturing, a rapid upscaling compared with the current production capacity is needed. The results presented herein highlight the need for careful consideration of sustainability issues when designing future high‐efficiency tandem cells that will help the world mitigate the dangers of climate change.

Funder

Australian Centre for Advanced Photovoltaics

Australian Renewable Energy Agency

Royal Academy of Engineering

Publisher

Wiley

Subject

Electrical and Electronic Engineering,Condensed Matter Physics,Renewable Energy, Sustainability and the Environment,Electronic, Optical and Magnetic Materials

Reference80 articles.

1. https://unfccc.int/process-and-meetings/the-paris-agreement/the-paris-agreement

2. https://www.science.org.au/news-and-events/events/climate-change-challenges-health

3. How Did Solar Cells Get So Cheap?

4. Intergovernmental Panel on Climate Change (IPCC) Climate change 2021: the physical science basis 2021.

5. Global Carbon Budget2016.

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