Submitted:
27 April 2025
Posted:
29 April 2025
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Abstract
Keywords:
1. Introduction
2. Results and Discussion
2.1. Preparation of the Oil Solution of Ag(I) Precursor via Reversible Phase-Transfer
2.2. Proposed Mechanism on the Synthesis of Ag2S QDs Through “Uni-Micelle” System
2.3. Size Controlled Synthesis of Ag2S QDs Through “Uni-Micelle” System
2.4. Structures and Performances of the as- Synthesized Ag2S QDs
3. Conclusions
Supporting Information
Acknowledgments
Competing Interests
References
- Ahmad, R., et al., Size-Tunable Synthesis of Colloidal Silver Sulfide Nanocrystals for Solution-Processed Photovoltaic Applications. CHEMISTRYSELECT, 2018. 3(20): p. 5620-5629. [CrossRef]
- Hamed, M.S.G., et al., Silver sulphide nano-particles enhanced photo-current in polymer solar cells. Applied Physics A, 2020. 126(3): p. 207. [CrossRef]
- Sharma, A., et al., Silver sulphide (Ag2S) quantum dots synthesized from aqueous route with enhanced antimicrobial and dye degradation capabilities. Physica E: Low-dimensional Systems and Nanostructures, 2023. 151: p. 115730. [CrossRef]
- Afshari, M.J., et al., Self-illuminating NIR-II bioluminescence imaging probe based on silver sulfide quantum dots. ACS Nano, 2022. 16(10): p. 16824-16832. [CrossRef]
- Ren, Q., et al., One-Step Synthesis of Water-Soluble Silver Sulfide Quantum Dots and Their Application to Bioimaging. ACS Omega, 2021. 6(9): p. 6361-6367. [CrossRef]
- Bhatt, V., et al., Pyro-phototronic effect in colloidal quantum dots on silicon heterojunction for high-detectivity infrared photodetectors. Nano Energy, 2025. 133: p. 110465. [CrossRef]
- Zhang, Y., et al., Controlled Synthesis of Ag2S Quantum Dots and Experimental Determination of the Exciton Bohr Radius. The Journal of Physical Chemistry C, 2014. 118(9): p. 4918-4923. [CrossRef]
- Pietryga, J., et al., Spectroscopic and Device Aspects of Nanocrystal Quantum Dots. Chemical reviews, 2016. 116: p. 10513-10622. [CrossRef]
- Stroyuk, A.L., et al., Quantum Size Effects in Semiconductor Photocatalysis. Theoretical and Experimental Chemistry, 2005. 41(4): p. 207-228. [CrossRef]
- Pinna, J., et al., Approaching Bulk Mobility in PbSe Colloidal Quantum Dots 3D Superlattices. ADVANCED MATERIALS, 2023. 35(8). [CrossRef]
- Ushakova, E.V., et al., 3D superstructures with an orthorhombic lattice assembled by colloidal PbS quantum dots. Nanoscale, 2018. 10(17): p. 8313-8319. [CrossRef]
- Raphael, E., D.H. Jara, and M.A. Schiavon, Optimizing photovoltaic performance in CuInS2 and CdS quantum dot-sensitized solar cells by using an agar-based gel polymer electrolyte. RSC Advances, 2017. 7(11): p. 6492-6500. [CrossRef]
- Akdas, T., et al., Continuous synthesis of CuInS2 quantum dots. RSC Advances, 2017. 7(17): p. 10057-10063. [CrossRef]
- Albaladejo-Siguan, M., et al., Bis(stearoyl) Sulfide: A Stable, Odor-Free Sulfur Precursor for High-Efficiency Metal Sulfide Quantum Dot Photovoltaics. ADVANCED ENERGY MATERIALS, 2023. 13(20). [CrossRef]
- Ratnesh, R.K., Hot injection blended tunable CdS quantum dots for production of blue LED and a selective detection of Cu2+ ions in aqueous medium. Optics & Laser Technology, 2019. 116: p. 103-111. [CrossRef]
- Masikane, S.C., et al., Lead(II) halide cinnamaldehyde thiosemicarbazone complexes as single source precursors for oleylamine-capped lead sulfide nanoparticles. JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 2018. 29(2): p. 1479-1488. [CrossRef]
- Sarker, J.C. and G. Hogarth, Dithiocarbamate Complexes as Single Source Precursors to Nanoscale Binary, Ternary and Quaternary Metal Sulfides. CHEMICAL REVIEWS, 2021. 121(10): p. 6057-6123. [CrossRef]
- Wepfer, S., et al., Solution-Processed CuInS2-Based White QD-LEDs with Mixed Active Layer Architecture. ACS Applied Materials & Interfaces, 2017. 9(12): p. 11224-11230. [CrossRef]
- Tapley, A., et al., Assessing the Band Structure of CuInS2 Nanocrystals and Their Bonding with the Capping Ligand. The Journal of Physical Chemistry C, 2015. 119(36): p. 20967-20974. [CrossRef]
- Wei, J., N. Schaeffer, and M.P. Pileni, Ligand Exchange Governs the Crystal Structures in Binary Nanocrystal Superlattices. J Am Chem Soc, 2015. 137(46): p. 14773-84. [CrossRef]
- Pileni, M., Reverse Micelles as Micro-reactors. The Journal of Physical Chemistry, 1993. 97. [CrossRef]
- Ingert, D., et al., CdTe Quantum Dots Obtained by Using Colloidal Self-Assemblies as Templates. Advanced Materials - ADVAN MATER, 1999. 11: p. 220-223.
- Kershaw, S.V., A.S. Susha, and A.L. Rogach, Narrow bandgap colloidal metal chalcogenide quantum dots: synthetic methods, heterostructures, assemblies, electronic and infrared optical properties. Chem Soc Rev, 2013. 42(7): p. 3033-87. [CrossRef]
- Wikander, K., et al., Size Control and Growth Process of Alkylamine-Stabilized Platinum Nanocrystals: A Comparison between the Phase Transfer and Reverse Micelles Methods. Langmuir : the ACS journal of surfaces and colloids, 2006. 22: p. 4863-8. [CrossRef]
- Yang, J., et al., A general phase-transfer protocol for metal ions and its application in nanocrystal synthesis. Nat Mater, 2009. 8(8): p. 683-9. [CrossRef]
- Tang, J., et al., Fine silver sulfide–platinum nanocomposites supported on carbon substrates for the methanol oxidation reaction. RSC Advances, 2017. 7(6): p. 3455-3460. [CrossRef]
- Li H L, Xue J, Liu Z P, et al. Reversible phase-transfer mediated single reverse micelle towards synthesis of silver nanocrystals. Sci China Tech Sci, 2020, 63. [CrossRef]
- Motte, L. and M. Pileni, Influence of Length of Alkyl Chains Used To Passivate Silver Sulfide Nanoparticles on Two- and Three-Dimensional Self-Organization. Journal of Physical Chemistry B - J PHYS CHEM B, 1998. 102. [CrossRef]
- Hagfeldt, A. and M. Graetzel, Light-Induced Redox Reactions in Nano-Crystalline Systems. Chemical Reviews; (United States), 2009. 95:1. [CrossRef]
- Bagwe, R. and K. Khilar, Effects of Intermicellar Exchange Rate on the Formation of Silver Nanoparticles in Reverse Microemulsions of AOT. Langmuir, 2000. 16. [CrossRef]



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