Tan, HuaiLi, QiaolinCao, TiantianChen, GangGuan, HongtaoDong, ChengjunYin, Zongyou2025-05-232025-05-230925-4005http://www.scopus.com/inward/record.url?scp=85219119876&partnerID=8YFLogxKhttps://hdl.handle.net/1885/733752744Controlling the morphology of metal–organic frameworks (MOFs) is critical for tailoring their transformation into metal oxides with unique microstructures and properties, particularly for gas sensing applications. In this study, a dual In-MOF-MF was developed using a mixed linker approach involving terephthalic acid and fumaric acid. These two linkers interact with In3 + ions to produce nanofibers with a high aspect ratio. The resulting In2O3-MF exhibits superior acetone sensing properties compared to In2O3 derived from single-linker MOFs. Furthermore, the n-type In2O3-MF was coupled with p-type PtO to create a p-n junction gas sensor. The combination of rich active sites and the well-defined coupling interfaces between PtO and In2O3-MF leads to remarkable acetone sensing performance, featuring a high response (347–100 ppm acetone), rapid response/recovery time (34/18 s), excellent selectivity, and a relatively low detection limit (300 ppb). This work highlights a mixed-linker strategy for MOF morphology manipulation, enabling the fabrication of a one-dimensional p-n junction for next-generation advanced acetone sensing applications.The authors appreciate the financial support from the National Natural Science Foundation of China (22165032), and the Application Basic Research Fund of Yunnan Province (202201AT070416). The authors also thank the Advanced Analysis and Measurement Center of Yunnan University for the sample testing service.11en© 2025 The Authors. Published by Elsevier B.V.Acetone detectionIn-MOFsInONanofibersPtOMixed-linker strategy for superior 1D MOF-derived p-n junction acetone sensors2025-06-1510.1016/j.snb.2025.13752985219119876