TY - JOUR
T1 - Lithium demand and mitigation pathways from China’s photovoltaic storage expansion under climate targets
AU - Yin, Guoen
AU - Zhang, Bin
AU - Liu, Zuyao
AU - Zhang, Guo
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to International Society for Industrial Ecology (ISIE) 2026.
PY - 2026
Y1 - 2026
N2 - As global climate targets intensify the transition to renewable energy, addressing the intermittency of photovoltaic (PV) power generation necessitates large-scale energy storage integration. This study evaluates how different energy storage technologies ratio for PV systems impacts lithium demand under 1.5 °C and 2 °C climate scenarios in China, while identifying critical risks at the nexus of resource security, environmental sustainability, and economic stability during industrial decarbonization. Using the Global Change Assessment Model (GCAM), we forecast PV capacity growth and optimize energy storage technology deployment—including lithium-ion batteries, sodium-ion, vanadium flow, and sodium-sulfur batteries—under four policy-driven scenarios. Results indicate that stricter climate targets could drive lithium demand for PV storage alone to up to 580,000 tonnes annually by 2050—24 times China’s total storage sector consumption in 2023. However, strategic adoption of alternative technologies can dramatically alter this trajectory: under cost-minimization and environmental-impact-minimization scenarios, lithium demand is reduced by 70–85% compared to a performance-optimized baseline, primarily through large-scale deployment of alternative technologies. The findings highlight a critical trade-off between technological performance and resource security. We conclude that diversifying storage technologies and accelerating the development of alternative electrochemical energy storage represent essential strategies to align climate goals with resource efficiency and industrial resilience.
AB - As global climate targets intensify the transition to renewable energy, addressing the intermittency of photovoltaic (PV) power generation necessitates large-scale energy storage integration. This study evaluates how different energy storage technologies ratio for PV systems impacts lithium demand under 1.5 °C and 2 °C climate scenarios in China, while identifying critical risks at the nexus of resource security, environmental sustainability, and economic stability during industrial decarbonization. Using the Global Change Assessment Model (GCAM), we forecast PV capacity growth and optimize energy storage technology deployment—including lithium-ion batteries, sodium-ion, vanadium flow, and sodium-sulfur batteries—under four policy-driven scenarios. Results indicate that stricter climate targets could drive lithium demand for PV storage alone to up to 580,000 tonnes annually by 2050—24 times China’s total storage sector consumption in 2023. However, strategic adoption of alternative technologies can dramatically alter this trajectory: under cost-minimization and environmental-impact-minimization scenarios, lithium demand is reduced by 70–85% compared to a performance-optimized baseline, primarily through large-scale deployment of alternative technologies. The findings highlight a critical trade-off between technological performance and resource security. We conclude that diversifying storage technologies and accelerating the development of alternative electrochemical energy storage represent essential strategies to align climate goals with resource efficiency and industrial resilience.
KW - Alternative pathways
KW - China
KW - Electrochemical energy storage
KW - GCAM
KW - Lithium demand
KW - Photovoltaic energy storage
UR - https://www.scopus.com/pages/publications/105044312896
U2 - 10.1007/s44498-026-00123-y
DO - 10.1007/s44498-026-00123-y
M3 - Article
AN - SCOPUS:105044312896
SN - 1088-1980
JO - Journal of Industrial Ecology
JF - Journal of Industrial Ecology
ER -