在强光照射下,CdS量子点易发生光腐蚀现象,通过金属掺杂和复合的方式可以提高CdS的光催化性能和光稳定性。采用水热法合成了Zn掺杂CdS/g-C_(3)N_(4)复合纳米材料(Zn-CdS/g-C_(3)N_(4))。利用扫描电子显微镜(SEM)、透射电子显微镜(TEM)、...在强光照射下,CdS量子点易发生光腐蚀现象,通过金属掺杂和复合的方式可以提高CdS的光催化性能和光稳定性。采用水热法合成了Zn掺杂CdS/g-C_(3)N_(4)复合纳米材料(Zn-CdS/g-C_(3)N_(4))。利用扫描电子显微镜(SEM)、透射电子显微镜(TEM)、X射线衍射(XRD)、X射线光电子能谱(XPS)和傅里叶变换红外光谱(FT-IR)等手段对Zn-CdS/g-C_(3)N_(4)复合材料的形貌、结构和组成等进行了表征。结果表明,Zn-CdS纳米颗粒附着在g-C_(3)N_(4)表面上,从而形成Zn-CdS/g-C_(3)N_(4)复合材料,且复合后材料带隙减小,光生电子-空穴复合率降低。在500 W Xe灯照射下,研究了Zn-CdS/g-C_(3)N_(4)对罗丹明B(RhB)的光催化降解性能。在最优条件下,光照40 min后,所制备的Zn-CdS/g-C_(3)N_(4)对RhB的光催化降解效率达99%。此外,所合成的Zn-CdS/g-C_(3)N_(4)复合材料光稳定性较高、可再生性好。这归因于Zn和Cd的协同作用以及与g-C_(3)N_(4)的复合,促进了光生载流子的分离和转移。展开更多
Efficient photocatalytic water splitting can be significantly enhanced through the careful design of S-scheme heterostructures,which play a pivotal role in optimizing performance.Herein,we report the construction of Z...Efficient photocatalytic water splitting can be significantly enhanced through the careful design of S-scheme heterostructures,which play a pivotal role in optimizing performance.Herein,we report the construction of ZnIn_(2)S_(4)/CdS S-scheme heterojunctions under ambient conditions,based on a sonochemical strategy.This structure is facilitated by the well-matched interface between the(007)plane of layered ZnIn_(2)S_(4)and the(101)plane of CdS,leading to a threshold optical response of 2.12 eV,which optimally aligns with visible light absorption.As a proof of concept,the resulting ZnIn_(2)S_(4)/CdS catalysts demonstrate a remarkable improvement in photocatalytic H_(2) evolution,achieving a rate of 5678.2μmol h^(-1)g^(-1)under visible light irradiation(λ>400 nm).This rate is approximately 10 times higher than that of pristine ZnIn_(2)S_(4)nanosheets(NSs)and about 4.6 times higher than that of CdS nanoparticles(NPs),surpassing the performance of most ZnIn_(2)S_(4)-based photocatalysts reported to date.Moreover,they deliver a robust photocatalytic performance during long-term operation of up to 60 h,showing their potential for use in practical applications.Based on the theoretical calculation and experimental results,it is verified that the movements of electrons and holes in the opposite direction could be induced by the disparity in the work function and the internal electric field within the interfaces,thus facilitating the construction of S-scheme heterojunctions,which fundamentally suppresses carrier recombination while minimizing photocorrosion of ZnIn_(2)S_(4)toward enhanced photocatalytic behaviors.展开更多
为了研究高原动物对青藏高原高寒、低氧等极端生境的适应机理,进一步探讨高原动物对高原反应——高原脑水肿抗性的分子机理,运用基因克隆与生物信息学相关技术和方法,对牦牛脑AQP4(水通道蛋白4,AQP4)基因CDS全长序列进行克隆、基因序列...为了研究高原动物对青藏高原高寒、低氧等极端生境的适应机理,进一步探讨高原动物对高原反应——高原脑水肿抗性的分子机理,运用基因克隆与生物信息学相关技术和方法,对牦牛脑AQP4(水通道蛋白4,AQP4)基因CDS全长序列进行克隆、基因序列比对及其生物信息学特征分析。结果表明,牦牛AQP4的CDS含有一个966 bp的开放阅读框,编码322个氨基酸;牦牛AQP4基因编码蛋白分子量34.69 k D,理论等电点(p I)7.59,其编码蛋白含有6次跨膜结构,属于疏水性蛋白;二级结构主要由α-螺旋、延伸及无规则卷曲构成;AQP4基因编码产物氨基酸同源性及系统进化分析发现,牦牛AQP4基因编码氨基酸序列与黄牛、绵羊等物种间同源性较高,系统进化情况与其亲缘关系远近一致。展开更多
文摘在强光照射下,CdS量子点易发生光腐蚀现象,通过金属掺杂和复合的方式可以提高CdS的光催化性能和光稳定性。采用水热法合成了Zn掺杂CdS/g-C_(3)N_(4)复合纳米材料(Zn-CdS/g-C_(3)N_(4))。利用扫描电子显微镜(SEM)、透射电子显微镜(TEM)、X射线衍射(XRD)、X射线光电子能谱(XPS)和傅里叶变换红外光谱(FT-IR)等手段对Zn-CdS/g-C_(3)N_(4)复合材料的形貌、结构和组成等进行了表征。结果表明,Zn-CdS纳米颗粒附着在g-C_(3)N_(4)表面上,从而形成Zn-CdS/g-C_(3)N_(4)复合材料,且复合后材料带隙减小,光生电子-空穴复合率降低。在500 W Xe灯照射下,研究了Zn-CdS/g-C_(3)N_(4)对罗丹明B(RhB)的光催化降解性能。在最优条件下,光照40 min后,所制备的Zn-CdS/g-C_(3)N_(4)对RhB的光催化降解效率达99%。此外,所合成的Zn-CdS/g-C_(3)N_(4)复合材料光稳定性较高、可再生性好。这归因于Zn和Cd的协同作用以及与g-C_(3)N_(4)的复合,促进了光生载流子的分离和转移。
基金supported by the National Natural Science Foundation of China(NSFC,Grant No.52372063,62204246 and 52401244)the Young Elite Scientists Sponsorship Program by CAST(Grant No.2023QNRC001)+1 种基金the Postdoctoral Fellowship Program of CPSF(Grant No.GZC20233001,GZC20233006)the China Postdoctoral Science Foundation(Grant No.2024M753526)。
文摘Efficient photocatalytic water splitting can be significantly enhanced through the careful design of S-scheme heterostructures,which play a pivotal role in optimizing performance.Herein,we report the construction of ZnIn_(2)S_(4)/CdS S-scheme heterojunctions under ambient conditions,based on a sonochemical strategy.This structure is facilitated by the well-matched interface between the(007)plane of layered ZnIn_(2)S_(4)and the(101)plane of CdS,leading to a threshold optical response of 2.12 eV,which optimally aligns with visible light absorption.As a proof of concept,the resulting ZnIn_(2)S_(4)/CdS catalysts demonstrate a remarkable improvement in photocatalytic H_(2) evolution,achieving a rate of 5678.2μmol h^(-1)g^(-1)under visible light irradiation(λ>400 nm).This rate is approximately 10 times higher than that of pristine ZnIn_(2)S_(4)nanosheets(NSs)and about 4.6 times higher than that of CdS nanoparticles(NPs),surpassing the performance of most ZnIn_(2)S_(4)-based photocatalysts reported to date.Moreover,they deliver a robust photocatalytic performance during long-term operation of up to 60 h,showing their potential for use in practical applications.Based on the theoretical calculation and experimental results,it is verified that the movements of electrons and holes in the opposite direction could be induced by the disparity in the work function and the internal electric field within the interfaces,thus facilitating the construction of S-scheme heterojunctions,which fundamentally suppresses carrier recombination while minimizing photocorrosion of ZnIn_(2)S_(4)toward enhanced photocatalytic behaviors.
文摘为了研究高原动物对青藏高原高寒、低氧等极端生境的适应机理,进一步探讨高原动物对高原反应——高原脑水肿抗性的分子机理,运用基因克隆与生物信息学相关技术和方法,对牦牛脑AQP4(水通道蛋白4,AQP4)基因CDS全长序列进行克隆、基因序列比对及其生物信息学特征分析。结果表明,牦牛AQP4的CDS含有一个966 bp的开放阅读框,编码322个氨基酸;牦牛AQP4基因编码蛋白分子量34.69 k D,理论等电点(p I)7.59,其编码蛋白含有6次跨膜结构,属于疏水性蛋白;二级结构主要由α-螺旋、延伸及无规则卷曲构成;AQP4基因编码产物氨基酸同源性及系统进化分析发现,牦牛AQP4基因编码氨基酸序列与黄牛、绵羊等物种间同源性较高,系统进化情况与其亲缘关系远近一致。