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Verified CAS / Academic Author2 Decoded Studies

Prof. XING Zeng

Beijing National Laboratory for Molecular Sciences, CAS Key Laboratory of Organic Solids, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3366-9

Organic Solar Cells Surpassing 20% Power Conversion Efficiency: Material Innovations, Device Engineering, and Pathways to Flexible Power Suppliers

Organic solar cells (OSCs) have transitioned from <1% initial power conversion efficiency (PCE) to a benchmark exceeding 20% in single-junction and tandem architectures, marking a critical milestone for solution-processable photovoltaics. This review consolidates recent reports (2022–2025) on OSCs with PCE >20%, analyzing key strategies: photoactive material innovation (wide-bandgap polymer donors, narrow-bandgap non-fullerene acceptors), multi-component system construction, deposition protocol optimization, solid/solvent additive engineering, and hole/electron transport layer development. Empirical data from 15 high-impact studies reveal PCEs of 20.0–20.6% in single-junction devices and 20.2–26% in perovskite/organic tandem cells, with interfacial engineering (e.g., yttrium phosphotungstate, carbazole-modified 2PACz, naphthalene diimide interlayers) suppressing bimolecular recombination and enabling scalable large-area fabrication. Operational stability remains a bottleneck: amide-based cathode interlayers achieve 20% PCE with dual-modification mechanisms, while self-assembled monolayers enable hole transport layer-free devices with 18% efficiency and improved stability. The review identifies next-stage challenges: reducing voltage losses (to <0.5 V), scaling deposition uniformity beyond 100 cm², and achieving cost parity with silicon (<$0.30/Wp). These issues are critical for flexible and wearable power suppliers, where mechanical durability (<5% PCE degradation after 1000 bending cycles) and low-temperature processing (<150°C) are mandatory. The analysis provides a roadmap for industrial translation, emphasizing that material–device co-optimization, rather than isolated breakthroughs, will determine commercial viability.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3355-0

Enhanced ion conductivity detection utilizing superhydrophilic cauliflower-like Pt black electrodes prepared via ultrasonic electrodeposition

Dense, non-porous pure platinum electrodes in conductivity sensors suffer from bubble accumulation and surface contamination, limiting sensitivity and stability for precise marine ion detection. This study introduces a combined ultrasonic and pulse electrodeposition technique to fabricate a cauliflower-like platinum black (CF-Pt-black) layer on bare platinum substrates. The resulting electrode exhibits superhydrophilicity with a contact angle of 34.52°, a 0.7-fold reduction in impedance, and a 3.54-fold increase in charge storage capacity compared to bare Pt. Mechanical and electrochemical stability are excellent. When integrated into marine conductivity sensors, the Pt black-modified electrodes improve accuracy from 0.0025 to 0.0012 mS/cm and reduce response time by 160 s. These enhancements stem from the increased surface area and active sites provided by the porous, cauliflower-like morphology, which facilitates electrolyte adsorption and ion transfer while minimizing contaminant adhesion. The findings position CF-Pt-black as a superior candidate for high-precision ion detection, biosensing, and neural recording applications.