材料科学
电池(电)
光电子学
能量转换效率
能量转换
太阳能
光伏系统
能量收集
可再生能源
带隙
工作(物理)
高效能源利用
储能
太阳能转换
电压
单色
吸收(声学)
可持续能源
功率(物理)
光电-热混合太阳能集热器
工程物理
化学能
发电
能量载体
纳米技术
混合太阳能电池
太阳能
太阳能燃料
电
等离子太阳电池
作者
Xinlong Fu,Changshui Huang,Yi Wang,Rong Wu,Deyi Zhang,Yuliang Li
标识
DOI:10.1002/ange.202517650
摘要
Abstract Direct conversion of solar energy in zinc‐air batteries (SZABs) represents a promising direction for energy storage with huge market potential. However, the key issue to be overcome is the pronounced photo‐generated carrier recombination and a mismatch in optoelectronic‐catalytic properties. Here, we report an atomic‐ level bandgap‐engineering regulation method to unlock high‐efficiency solar energy harvesting and catalytic activation in SZABs based on nitrogen‐substituting graphdiyne (N‐GDYs). The bandgap‐regulation creates tailored electronic structures of N‐GDYs, which not only extends the light absorption range, but also enhances the ability of separation and migration of photo‐generated carriers. Interestingly, the 2N‐GDY demonstrates superior photocatalytic performance, due to its optimal matching bandgap structure. The resulting SZABs device employing 2N‐GDY achieves exceptional battery efficiency of 96.8% under visible light illumination, accompanied by a remarkably low voltage gap of 0.04 V. Notably, under monochromatic light excitation, the system demonstrates enhanced light utilization through wavelength‐selective absorption, achieving a power conversion efficiency (PCE) of up to 4.55%. This work fundamentally advances the rational design of 2D catalytic materials, offering a critical pathway toward high‐efficiency solar rechargeable energy systems that bridge the gap between sustainable energy harvesting and storage.
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