材料科学
光热治疗
纳米尺度
太阳能
光催化
太阳能燃料
还原(数学)
能量转换效率
纳米技术
表面等离子共振
量子效率
光子
温室
能量转换
降级(电信)
光电子学
环境科学
纳米壳
工作(物理)
等离子体子
光伏系统
光热效应
量子点
催化作用
分解水
光伏
电子
温室效应
表面等离子体子
温室气体
化学
作者
Xiaofeng Kang,Mingyu Jiang,Jiarong Lv,Chen Liao,Xue Ding,Fang Wang,Shengjie Bai,Ya Liu,Liejin Guo
标识
DOI:10.1038/s41467-026-70960-9
摘要
Improvement of solar-to-chemical energy conversion in photocatalytic CO2 reduction remains fundamentally constrained by insufficient utilization of solar energy, particularly low-energy photons. Here we report a nanoscale greenhouse structure (Bi@Fe2O3) that enables cascaded utilization of full solar spectrum. The Bi nanocore primarily absorbs low-energy photons, generating localized nanoheating via non-radiative heating through localized surface plasmon resonance effects and energetic hot electrons. Meanwhile, the oxygen-vacancy-rich loose Fe2O3 shell absorbs high-energy photons and serves as the catalytic bed, where injected hot electrons and confined heat synergistically promote CO2 activation and deep hydrogenation. Benefiting from the interplay between photochemical and photothermal effects, the system achieves a CH4 production rate of 273.81 μmol g–1 h–1 with 98.60% selectivity and an apparent quantum efficiency of 0.64% at 850 nm illumination without any external heating or sacrificial agents. This work paves a way for the efficient utilization of the entire solar spectrum. Photocatalytic CO₂ reduction is fundamentally limited by inefficient utilization of solar energy, particularly low-energy photons. Here, the authors report a nanoscale greenhouse structure (Bi@Fe₂O₃) that enables cascaded full-spectrum solar utilization and enhances solar-driven CO₂ reduction with water to CH₄.
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