Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/114900
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dc.contributorDepartment of Applied Biology and Chemical Technologyen_US
dc.contributorResearch Institute for Smart Energyen_US
dc.creatorDu, YJen_US
dc.creatorYang, Jen_US
dc.creatorLv, Zen_US
dc.creatorZhai, Yen_US
dc.creatorYi, Zen_US
dc.creatorXie, Yen_US
dc.creatorZheng, MLen_US
dc.creatorMa, Xen_US
dc.creatorGong, Gen_US
dc.creatorWang, Yen_US
dc.creatorZhou, Yen_US
dc.creatorHan, STen_US
dc.date.accessioned2025-09-01T01:53:31Z-
dc.date.available2025-09-01T01:53:31Z-
dc.identifier.issn1616-301Xen_US
dc.identifier.urihttp://hdl.handle.net/10397/114900-
dc.language.isoenen_US
dc.publisherWiley-VCH Verlag GmbH & Co. KGaAen_US
dc.rights© 2025 The Author(s). Advanced Functional Materials published by Wiley-VCH GmbH. This is an open access article under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs License (http://creativecommons.org/licenses/by-nc-nd/4.0/), which permits use and distribution in any medium, provided the original work is properly cited, the use is non-commercial and no modifications or adaptations are made.en_US
dc.rightsThe following publication Y.-J. Du, J. Yang, Z. Lv, et al. “ Integration of Perovskite/Low-Dimensional Material Heterostructures for Optoelectronics and Artificial Visual Systems.” Adv. Funct. Mater. 35, no. 36 (2025): 2500953 is available at https://doi.org/10.1002/adfm.202500953.en_US
dc.subjectHalide perovskitesen_US
dc.subjectHeterojunctionsen_US
dc.subjectLow-dimensional materialsen_US
dc.subjectMemoryen_US
dc.subjectNeuromorphic computingen_US
dc.titleIntegration of perovskite/low-dimensional material heterostructures for optoelectronics and artificial visual systemsen_US
dc.typeJournal/Magazine Articleen_US
dc.identifier.volume35en_US
dc.identifier.issue36en_US
dc.identifier.doi10.1002/adfm.202500953en_US
dcterms.abstractHeterojunctions combining halide perovskites with low-dimensional materials are revolutionizing optoelectronic device design by leveraging complementary properties. Halide perovskites, known for their tunable bandgaps, excellent light-harvesting, and efficient charge carrier mobility, provide a robust foundation for photodetectors (PDs) and imaging sensors. Low-dimensional materials contribute ultrafast carrier mobility, enhanced light-matter interactions, and mechanical flexibility. When integrated into heterostructures, these materials enable precise control over charge dynamics, leading to significant improvements in device efficiency, stability, and response speed. This synergy addresses critical challenges in optoelectronics, advancing flexible electronics, wearable sensors, and high-sensitivity imaging systems. Ongoing advancements in interface engineering and material synthesis are continually enhancing the reliability and operational efficacy of these devices across various environmental conditions. Additionally, these heterostructures show substantial promise in neuromorphic computing, where their optoelectronic properties support energy-efficient, event-driven data processing. By mimicking the adaptive and hierarchical nature of biological visual systems, they offer new possibilities for real-time image analysis and intelligent decision-making. This review highlights the latest developments in halide perovskite-based heterojunctions with low-dimensional materials and their transformative role in bridging the gap between artificial and biological vision, driving advancements in technologies such as adaptive robotics and bio-inspired visual systems.en_US
dcterms.abstractGraphical abstract: [Figure not available: see fulltext.]en_US
dcterms.accessRightsopen accessen_US
dcterms.bibliographicCitationAdvanced functional materials, 4 Sept 2025, v. 35, no. 36, 2500953en_US
dcterms.isPartOfAdvanced functional materialsen_US
dcterms.issued2025-09-04-
dc.identifier.scopus2-s2.0-105002474096-
dc.identifier.eissn1616-3028en_US
dc.identifier.artn2500953en_US
dc.description.validate202509 bcchen_US
dc.description.oaVersion of Recorden_US
dc.identifier.FolderNumberOA_TA-
dc.description.fundingSourceRGCen_US
dc.description.fundingSourceOthersen_US
dc.description.fundingTextY.-J.D. and J.Y. contributed equally to this work. S.-T. Han acknowledges the financial support from the Hong Kong Research Grants Council, Young Collaborative Research Grant (C5001#x02010;24), Research Institute for Smart Energy (U#x02010;CDC9) and Guangdong Provincial Department of Science and Technology (2024B1515040002). Y. Zhou acknowledges grants from RSC Sustainable Laboratories Grant (L24#x02010;8215098370), Guangdong Basic and Applied Basic Research Foundation (2023A1515012479), the Science and Technology Innovation Commission of Shenzhen (JCYJ20220818100206013), RSC Researcher Collaborations Grant (C23#x02010;2422436283), State Key Laboratory of Radio Frequency Heterogeneous Integration (Independent Scientific Research Program No. 2024010), and NTUT#x02010;SZU Joint Research Program. This work was also supported by National Natural Science Foundation of China (52373248), Guangdong Provincial Department of Science and Technology (2024A1515010006, and 2024A1515011718), Guangdong Basic and Applied Basic Research Foundation (2023A1515012479 and 2025A1515011274), and the Science and Technology Innovation Commission of Shenzhen (JCYJ20230808105900001, JCYJ20220531102214032, and 20231123155543001).en_US
dc.description.pubStatusPublisheden_US
dc.description.TAWiley (2025)en_US
dc.description.oaCategoryTAen_US
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