Jiaoyue Wang, Zhonghui Wang, Shimiao Quan, Rui Zhong, Longfei Bing, Qinqin Hu, Tingting Xu, Honglin Ling, Na Zhao, Fengming Xi
Amid increasing pressure to reduce carbon emissions and address the energy crisis, solar power has emerged as a key alternative to fossil fuels. China possesses extensive abandoned open-pit mines suitable for photovoltaic (PV) power development; however, their carbon mitigation and energy conservation potential remains largely underutilized. In this study, we develop an integrated model to quantify the life-cycle carbon mitigation potential of PV systems on these mines, combining PV power generation with ecological restoration of mine sites. The results indicate that developing PV systems on abandoned open-pit mines in China could generate 1.34-2.93 EJ yr-1 of renewable energy and reduce CO2 emissions by 278.85-613.79 Mt yr-1, accounting for 5.9%-12.8% of China’s coal-fired power generation and 2.8%-6.2% of its carbon emissions in 2020. Replacing conventional electricity with PV power yields greater carbon mitigation (611.63 t CO2 ha-1) than bioenergy alternatives, including biopower (102.96 t CO2 ha-1), ethanol (61.99 t CO2 ha-1), and biodiesel (17.13 t CO2 ha-1). Inner Mongolia, Xinjiang, Shandong, Hebei, Guangxi, and Yunnan were identified as key provinces with high renewable energy production and corresponding CO2 mitigation potential, collectively contributing 44%-45% of the total mitigation potential. Overall, an energy-oriented ecological restoration model, such as the “PV+” scenarios for abandoned open-pit mines, is economically feasible. This study provides geographically tailored information to help decision-makers optimize the use of multifunctional land resources, supporting the green transformation of the mining industry and advancing China’s dual carbon targets.