【学术论文】孟苏刚教授团队在《Chemical Engineering Journal》上发表论文
题目:Synergistic internal electric field and Lewis acid–base dual sites for simultaneous CO2 photoreduction and phenylcarbinol oxidation
作者:Haiteng Guo, Bo Weng, Yong Liu*, Jun Hu*, Raf Dewil, Sugang Meng*
单位:Key Laboratory of Green and Precise Synthetic Chemistry and Applications, Ministry of Education; School of Chemistry and Chemical Engineering, Huaibei Normal University, Huaibei 235000, P.R. China.
摘要: Constructing dual photocatalytic systems integrating CO2 reduction with organic oxidation reoresents a promising strategy for achieving efficient redox cycling. However, such systems still face the challenges of severe charge recombination and limited CO2 adsorption capacity. Here, we introduce K+ doping into CdS to create structural asymmetry, thereby enhancing the built-in electric field and forming Lewis acid-base dual sites. Combined theoretical calculation and experimental characterization confirm that K+ incorporation strengthens the internal electric field, boosting charge separation and driving concurrent CO2 photoreduction and selective oxidation of phenylcarbinol. The optimal 0.1%K+-CdS sample exhibit enhanced intensity of internal electric field and charge density as compared to pristine CdS. Moreover, the engineered Lewis acid-base dual sites facilitate CO2 adsorption and activation via a K+…C=O…Cd2+ interaction, which is beneficial to promote the rate-limiting step in CO2 reduction. Maximum photocatalytic efficiency was achieved over the 0.1%K+-CdS, which yielded CO at 3 mmol g-1 h-1 and benzaldehyde at 3.43 mmol g-1 h-1. These values surpass the output of the pristine counterpart by factors of 2.0 and 2.6, respectively. This work highlights internal‑field and acid–base site co‑engineering as a feasible route to improve coupled photocatalytic redox performance.

分区情况:SCI一区TOP期刊
影响因子: 12.498
年、卷、页: 2026, 545, 178287. DOI: 10.1016/j.cej.2026.178287.
链接: //authors.elsevier.com/a/1nSJG4x7R2rxuF
(文、图:孟苏刚 / 审核:刘理华 / 审校: 孟令国 / 终审:赵娟 )

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