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Chiral Graphene Quantum Dots and Carbon Dots: From Chirality Induction to Spin‐Selective Effects and Advanced Applications

Aumber AbbasMechanical Engineering Department and Interdisciplinary Research Center for Hydrogen Technologies & Carbon Management King Fahd University of Petroleum and Minerals (KFUPM) Dhahran Saudi ArabiaTaskeen ZahraSchool of Materials Engineering Jiangsu University of Technology Changzhou ChinaShabnum RubabNational & Local Joint Engineering Research Center for Mineral Salt Deep Utilization Huai’an University Huaian ChinaSaleem AbbasDepartment of Physics Constituent College Depalpur University of Agriculture Faisalabad PakistanImran SadiqCentre of Excellence in Solid State Physics University of the Punjab Lahore PakistanMuhammad MateenSchool of Physics and Electronic Engineering Jiangsu University Zhenjiang Jiangsu ChinaYasir AbbasInterdisciplinary Research Center for Membranes and Water Security King Fahd University of Petroleum and Minerals (KFUPM) Dhahran Saudi ArabiaEjaz HussainInstitute of New Concept Sensors and Molecular Materials Key Laboratory of Applied Surface and Colloid Chemistry (Ministry of Education) School of Chemistry and Chemical Engineering Shaanxi Normal University Xi’an ChinaFaheem AbbasDepartment of Chemistry Key Lab of Organic Optoelectronics and Molecular Engineering of Ministry of Education Tsinghua University Beijing ChinaNouman AhmedSchool of Materials Science and Engineering South China University of Technology Guangzhou ChinaMuhammad Irfan UllahInstitute of Polymer Optoelectronic Materials and Devices State Key Laboratory of Luminescent Materials and Devices South China University of Technology Guangzhou ChinaElyor SaitovUniversity of Tashkent for Applied Sciences Tashkent UzbekistanSajjad HaiderDepartment of Chemical Engineering College of Engineering King Saud University Riyadh Saudi ArabiaJunfei OuSchool of Materials Engineering Jiangsu University of Technology Changzhou China
2026en
ABI

Abstract

Chiral graphene quantum dots (GQDs) and carbon dots (CDs) represent a groundbreaking fusion of carbon nanotechnology and chirality science. These nanomaterials transcend their achiral counterparts by integrating exceptional biocompatibility and tunable photoluminescence with sophisticated chiroptical properties and the chirality-induced spin selectivity (CISS) effect. This review provides a comprehensive and critical analysis of the rapid evolution of this dynamic field. We first elucidate the fundamental origins of chirality-from chiral surface functionalization and intrinsic lattice distortion to supramolecular assembly-and detail the advanced spectroscopic techniques for its quantification. A systematic evaluation of synthetic methodologies, spanning one-step, two-step, and chiral composite strategies, is presented, highlighting the critical trade-offs between structural control and chiroptical strength. The discussion of core properties delves beyond conventional photoluminescence to explore the mechanisms and tunability of circularly polarized luminescence, room-temperature phosphorescence, and the transformative CISS effect. We subsequently explore how these properties enable state-of-the-art applications in enantioselective biosensing, targeted bioimaging and drug delivery, asymmetric catalysis, and next-generation spin-optoelectronics. The review concludes with a forward-looking perspective, outlining the key scientific challenges in synthesis, stability, and fundamental understanding that must be overcome to transition these promising materials from laboratory demonstrations to practical technologies.

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