SinoGreenTech Academic Portal
DY
Verified CAS / Academic Author2 Decoded Studies

Prof. DUAN Yan

College of Materials Science and Engineering, Hunan University

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3788-9

Stable δ-FA(Cs)PbI3 Intermediate Enables Fabrication of Large-Area Perovskite Solar Modules in Ambient Air

Fabrication of large-area perovskite solar modules under ambient air conditions remains a critical challenge due to air sensitivity of perovskite intermediate phases during crystallization. Here, we introduce 2-iodoimidazole (IIZ) into the perovskite precursor, enabling the formation of an air-stable pure δ-phase intermediate, which, upon annealing, fully transforms into a highly oriented α-phase perovskite film with reduced defects and variability. Leveraging this approach, we achieve a stabilized power conversion efficiency of 20.9% for 927.5 cm2 perovskite solar modules with high reproducibility. The encapsulated modules meet stringent international photovoltaic testing standards (IEC61215:2021), demonstrating excellent stability under continuous operation, thermal cycling (−40 to 85 °C) and damp heat (85 °C and 85% relative humidity).

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3452-9

Mixed ionic/electronic conducting framework enabled by transition metal-ion reduction in Li-LLTO composite anodes for ultrafast lithium diffusion

The unstable Li/LLZO interface during lithium stripping and plating impedes interfacial charge transport and accelerates dendrite growth, limiting the development of LLZO solid electrolytes. A freestanding ultrathin Li-Li0.3La0.5TiO3 (LLTO) composite anode with a three-dimensional interconnected mixed ionic/electronic conducting LLTO framework was developed. The mixed conduction arises from in-situ reduction of Ti4+ by metallic lithium. The composite anode exhibits good affinity toward LLZO, achieving a low interfacial resistance of 11.7 Ω cm2 and a lithium self-diffusion coefficient of 4.5×10−11 cm2/s, about one order of magnitude higher than pure lithium. These features enhance Li-LLTO/LLZO interfacial stability, increasing the critical current density fourfold and enabling a 1300-h symmetrical cell cycling life. Solid-state lithium batteries with this anode deliver 80% capacity retention after 220 cycles. This advancement improves lithium metal anode performance in solid-state batteries and offers insights for next-generation high-energy-density electrochemical energy storage systems.