The ORCID identification number(s) for the author(s) of this article can be found under https://doi.org/10.1002/ppsc.202200019. −1 , 4 h) is achieved with 15% CdS/BiOBr, which is nearly double higher than alone BiOBr (435 µmol g cat −1). Comparatively, the CdS/BiOBr microspheres with s-scheme heterostructure exhibit the surprising photocatalytic performance and CH 3 OH selectivity, which are attributed to the enhanced light absorption, as well as effective separation and migration of the photoinduced electron-hole pairs induced by the s-scheme heterojunction between BiOBr and CdS. This study provides a mild hydrolysis-ultrasonic method for environmental remediation and converting energy using cost-effective semiconductor materials. Recently, converting CO 2 into organic fuels, such as formate, [1] CH 3 OH, [2] CH 4 , [3] and HCHO, [4] is considered as a exploitable solution to improve the pollution of the environment purification and energy demanded.Up to now, numerous methods such as photocatalytic reduction, electrocatalytic reduction, biological transformation,