材料科学
半导体
等离子体子
光热治疗
纳米颗粒
价(化学)
超短脉冲
光电子学
纳米技术
格子(音乐)
化学物理
可见光谱
表面等离子体子
表面等离子共振
红外线的
纳米晶
科技与社会
近红外光谱
光热效应
散射
拉曼散射
等离子纳米粒子
光化学
作者
Yuemei Li,Hongfei Gu,Zexuan Lu,H. Zhang,Mengyao Su,Xiuming Zhang,Jia Liu,Wenxiong Shi,Jiatao Zhang
标识
DOI:10.1002/adma.202522120
摘要
In this work, we report the discovery and cation exchange-mediated synthesis of Cu2FeS2, a compound predicted computationally but never observed in nature or realized in the laboratory. Our findings reveal that it possesses an anomalous electronic structure among analogous Cu-Fe-S semiconductors due to the unique valence configuration. More strikingly, this unprecedented material displays ultrahigh molar extinction coefficients (ε > 107 M-1 cm-1) throughout the visible to near infrared (NIR) spectrum arising from remarkable localized surface plasmon resonances (LSPRs), coupled with intense electron-phonon interactions that enable ultrafast lattice heating on the 100 fs timescale. Such intrinsic attributes unequivocally designate Cu2FeS2 as an ideal thermoplasmonic material. It demonstrates superior photothermal conversion efficiencies (PCE) spanning both visible and NIR wavelengths, outperforming assorted well-established photothermal materials including Au nanoparticles and MXene nanosheets. As a demonstration, we leverage its prominent thermoplasmonic functionality to drive efficient photothermal dry reforming of methane under low light intensities. Beyond the results presented here, Cu2FeS2 is expected to provide a fertile ground for transformative investigations in many diverse fields of science.
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