光激发
化学
分解水
钙钛矿(结构)
带隙
半导体
氧化物
离域电子
光催化
电子结构
光催化分解水
化学物理
电子能带结构
纳米技术
光电子学
宽禁带半导体
四方晶系
格子(音乐)
太阳能转换
太阳能
纳米晶
能量转换
化学能
晶体结构
固溶体
电解水
作者
Hao Ling,Aomiao Zhi,Lei Liao,Yuanfang Feng,Yingying Lan,Lejuan Cai,Xudan Huang,Lisha Lu,R K Li,Qi Guo,Meiyun Li,Jingkun Zhang,Lifen Wang,Muhua Sun,Xuedong Bai,Wenlong Wang
摘要
The high degree of chemical complexity and expanded compositional space enabled by high-entropy engineering offers opportunities for rationally designing new type semiconductor photocatalysts with tailored electronic structure favorable for full-spectrum solar energy utilization. Here, we construct a high-entropy photocatalyst featuring an “inner-Z-scheme” stepwise photoexcitation that enables efficient visible-light-driven overall water splitting. This inner-Z-scheme is realized through the formation of a delocalized intermediate band within the wide bandgap of a perovskite NaNbO 3 host, achieved by selectively incorporating closed-shell d 0 and open-shell d n transition-metal cations into a single-phase solid solution. Electron microscopy confirms that the resulting high-entropy perovskite oxide (termed Na(HE)O 3 ) retains a highly crystalline structure while exhibiting the short-range lattice distortions characteristic of high-entropy materials. Complementary spectroscopic analyses identify a pronounced intermediate-band feature that enables sequential sub-bandgap electronic excitation and extends the photoresponse into the visible region. The compositional diversity further creates varied local coordination environments with the formation of intrinsic catalytic centers to enable overall water splitting without additional cocatalysts. Under AM 1.5G solar illumination, Na(HE)O 3 achieves stable overall water splitting with a solar-to-hydrogen efficiency of 1.34%. This work establishes high-entropy-stabilized intermediate-band semiconductors as a viable platform for band-structure engineering in photocatalyst design.
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