材料科学
氢
选择性
纳米颗粒
化学工程
吸附
催化作用
热液循环
解吸
纳米技术
氧气
多孔性
壳体(结构)
化学
复合材料
物理化学
有机化学
工程类
作者
Thuy T.D. Nguyen,Dung Van Dao,Nguyen Thi Thu Ha,Tuong Van Tran,Dong‐Seog Kim,Ji‐Wook Yoon,Nguyễn Ngọc Hà,In‐Hwan Lee,Yeon-Tae Yu
标识
DOI:10.1016/j.snb.2021.131083
摘要
[email protected] core-shell nanoparticles (CSNPs) offer great advantages for hydrogen sensing due to their unique properties compared to the individual components. Herein the synthesis of alloyed [email protected] CSNPs via a hydrothermal approach is reported. [email protected] sensor exhibits an impressive sensing response of 48 with respect to [email protected] (22), [email protected] (14), and free ZnO (9), along with the fast response and recovery times (0.7 and 3.0 min) to 100 ppm hydrogen at 350 °C, thus outperforming current achievements of advanced single-metal hybridized semiconductors. It further delivers high selectivity and long-term stability for hydrogen sensing. These improvements are attributed to (1) high catalytic activity of alloyed PdPt core, (2) high content of oxygen vacancies and chemisorbed oxygen in ZnO shell, (3) facile two-way transfer of electrons between the core and shell, and (4) high surface area and porosity of CSNPs. In addition, DFT calculations show that alloyed PdPt core has an excellent intrinsic hydrogen adsorption capability, superior to free-standing Pd and ZnO shell. These investigations together provide mechanistic insights into the working of the system in terms of gas adsorption, reaction, and desorption.
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