期刊文献+
共找到3篇文章
< 1 >
每页显示 20 50 100
Polar O-Co-P Surface for Bimolecular Activation in Catalytic Hydrogen Generation 被引量:1
1
作者 Huanhuan Zhang Ke Zhang +6 位作者 saima ashraf Yanping Fan Shuyan Guan Xianli Wu Yushan Liu Baozhong Liu Baojun Li 《Energy & Environmental Materials》 SCIE EI CAS CSCD 2023年第1期224-233,共10页
Boron hydrides release an abundant amount of hydrogen in the presence of a suitable catalyst.Accelerating bimolecular activation kinetics is the key to designing cost-effective catalysts for borohydride hydrolysis.In ... Boron hydrides release an abundant amount of hydrogen in the presence of a suitable catalyst.Accelerating bimolecular activation kinetics is the key to designing cost-effective catalysts for borohydride hydrolysis.In this study,the bimolecular activation of a polar O-Co-P site demonstrated superior hydrogen-generation kinetics(turnover frequency,TOF=37 min−1,298 K)and low activation energy(41.0 kJ mol^(−1))close to that of noble-metal-based catalysts.Through a combination of experiments and theoretical calculations,it was revealed that the activated dangling oxygen atom in the Co–O precursor effectively replaced via surface-phosphorization because of strong electronic interactions between the dangling oxygen and P atoms.This substitution modulated the local coordination environment and electronegativity around the surface Co sites and formed a new polar O-Co-P active site for optimizing the activation kinetics of ammonia borane and water.This strategy based on bimolecular activation may create new avenues in the field of catalysis. 展开更多
关键词 bimolecular activation borohydride hydrolysis hydrogen generation noble-metal-free catalysts polar site
在线阅读 下载PDF
Coupling atom ensemble and electron transfer in PdCu for superior catalytic kinetics in hydrogen generation 被引量:1
2
作者 Xinru Zhao Yanyan Liu +11 位作者 Huiyu Yuan Hao Wen Huanhuan Zhang saima ashraf Shuyan Guan Tao Liu Sehrish Mehdi Ruofan Shen Xianji Guo Yanping Fan Baozhong Liu Baojun Li 《Nano Research》 SCIE EI CSCD 2023年第7期9012-9021,共10页
The design of high-performance catalysts is the key to the efficient utilization of hydrogen energy.In this work,a PdCu nanoalloy was successfully anchored on TiO_(2)encapsulated with carbon to construct a catalyst.Ou... The design of high-performance catalysts is the key to the efficient utilization of hydrogen energy.In this work,a PdCu nanoalloy was successfully anchored on TiO_(2)encapsulated with carbon to construct a catalyst.Outstanding kinetics of the hydrolysis of ammonia borane(turnover frequency of 279 mol·min^(-1·)mol_(Pd)^(-1))ranking the third place among Pd-based catalysts was achieved in the absence of alkali.Both experimental research and theoretical calculations reveal a lower activation energy of the B-H bond on the PdCu nanoalloy catalyst than that on pristine Pd and a lower activation energy of the O-H bond than that on pristine Cu.The redistribution of d electron and the shift of the d-band center play a critical role in increasing the electron density of Pd and improving the catalytic performances of Pd_(0.1)Cu_(0.9)/TiO_(2)-porous carbon(Pd_(0.1)Cu_(0.9)/T-PC).This work provides novel insights into highly dual-active alloys and sheds light on the mechanism of dual-active sites in promoting borohydride hydrolysis. 展开更多
关键词 PdCu nanoalloy d-band holes ensemble effect borohydride hydrolysis dual-active sites
原文传递
Oxygen vacancy promoting artificial atom(RuPd)by d-orbital coupling for efficient water dissociation
3
作者 Ruofan Shen Yanyan Liu +9 位作者 Shuling Liu Shuyan Guan Huanhuan Zhang Sehrish Mehdi saima ashraf Ting-Hui Xiao Erjun Liang Jianchun Jiang Yongfeng Wang Baojun Li 《Nano Research》 SCIE EI CSCD 2024年第8期7045-7052,共8页
Rational design of highly active catalysts for breaking hydrogen-oxygen bonds is of great significance in energy chemical reactions involving water.Herein,an efficient strategy for the artificial atom(RuPd)established... Rational design of highly active catalysts for breaking hydrogen-oxygen bonds is of great significance in energy chemical reactions involving water.Herein,an efficient strategy for the artificial atom(RuPd)established by d-orbital coupling and adjusted by oxygen vacancy(V_(O))is verified for water dissociation.As an experimental verification,the turnover frequency of RuPd-TiO_(2)-VO(RuPdTVO)catalyst in ammonia borane hydrolysis reaches up to 2750 min^(−1)(26,190 min−1 based on metal dispersion)in the absence of alkali,exceeding the highest active catalysts(Rh-based catalysts).The d-orbital coupling effect between Ru and Pd simulates the outer electronic structure of Rh.Electron transfer from V_(O) to(RuPd)constructs an electron-rich state of active sites that further enhances the ability of the artificial atom to dissociate water.This work provides an effective electronic regulation strategy from V_(O) and artificial atom constructed by d-orbital coupling effect for efficient water dissociation. 展开更多
关键词 ammonia borane hydrolysis d-orbital coupling oxygen vacancy artificial atom water dissociation
原文传递
上一页 1 下一页 到第
使用帮助 返回顶部