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Black Phosphorus Quantum Dots for Sensing and Optoelectronic Applications: From Fundamental Properties to Device Integration

Mohamed Abu ShuheilFaculty of Allied Medical Sciences, Hourani Center for Applied Scientific Research Al‐Ahliyya Amman University Amman JordanChirag G. MakvanaDepartment of Chemistry, Faculty of Science Gokul Global University Sidhpur Gujarat IndiaMasharipov Kamolbek Ko'palovichDepartment of Natural Sciences Mamun University Khiva UzbekistanHussein Khaled NwrDepartment of Medical Laboratory Technologies, Faculty of Medical Technologies The Islamic University of Najaf Najaf IraqRasha Ali AbdalhuseenDepartment of Radiological Techniques, College of Health and Medical Technologies Alnoor University Nineveh IraqMonika VermaDepartment of Chemistry, University Institute of Sciences Chandigarh University Mohali Punjab IndiaDivya SinghalDepartment of Chemistry & Biochemistry, Sharda School of Engineering & Sciences Sharda University Greater Noida IndiaAhmad EsmaeilpourIslamic Azad University South Tehran Branch
2026en
ABI

Аннотация

Black phosphorus quantum dots (BPQDs) have recently attracted considerable attention as emerging nanomaterials for next-generation sensing and optoelectronic technologies due to their tunable bandgap, strong light-matter interaction, high carrier mobility, and large surface-to-volume ratio. In this review, we systematically summarize recent advances in BPQD-based sensors and optoelectronic devices, focusing on synthesis strategies, physicochemical properties, and device integration mechanisms that govern their performance. Particular attention is devoted to the roles of BPQDs in electrochemical and optical sensing platforms, where their quantum confinement effects, rich surface chemistry, and efficient charge transfer characteristics enable enhanced sensitivity, selectivity, and signal amplification. In addition, recent developments in optoelectronic applications, especially in organic and perovskite solar cells, are critically discussed, highlighting how BPQDs contribute to improved charge transport, interfacial engineering, and device efficiency. Current limitations associated with environmental instability, large-scale synthesis, and long-term operational reliability are also analyzed. Finally, future research directions are proposed to advance the practical implementation of BPQD-based technologies. To the best of our knowledge, this work represents the first comprehensive review specifically dedicated to BPQD-based sensors and optoelectronic devices.

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