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Article

Coptis Root-Derived Hierarchical Carbon-Supported Ag Nanoparticles for Efficient and Recyclable Alkyne Halogenation

1
Chongqing Field Scientific Observation and Research Station for Authentic Traditional Chinese Medicine in the Tree Gorges Reservoir Area, Chongqing University of Education, Chongqing 400067, China
2
College of Biological and Chemical Engineering, Chongqing University of Education, Chongqing 400067, China
*
Authors to whom correspondence should be addressed.
Molecules 2025, 30(3), 567; https://doi.org/10.3390/molecules30030567
Submission received: 16 December 2024 / Revised: 12 January 2025 / Accepted: 14 January 2025 / Published: 26 January 2025
(This article belongs to the Special Issue Catalysis for Green Chemistry II)

Abstract

The advancement of green chemistry and sustainable chemical processes has been significantly facilitated by catalytic systems derived from plant roots, which also present substantial application prospects in the realm of chemical synthesis. This study utilized the roots of Rhizoma Coptidis as a support to successfully fabricate a silver-based nanocatalyst. By depositing silver nanoparticles onto the root material of Coptis chinensis and subjecting it to carbonization, a silver/carbon composite was synthesized, featuring monodisperse silver nanoparticles and a hierarchical mesoporous carbon framework. This composite exhibits robust surface activity, a well-defined pore structure, and superior mechanical properties. The catalyst achieves a catalytic yield nearing 90%, showcasing remarkable activity in terminal alkyne halogenation reactions. Its stability and recyclability are markedly enhanced; it retains 95% of its mass and remains unaltered in the reaction solvent for over 160 h after five cycles. This method simplifies the synthesis of terminal alkynes and their derivatives, rendering the process more environmentally benign and efficacious. Furthermore, it broadens the potential applications of Rhizoma Coptidis in synthetic chemistry and pioneers a novel approach for the synthesis of precious metal catalysts from renewable resources.
Keywords: green chemistry; catalyst loading; biochar; silver nanoparticles (AgNPs); Coptis root; terminal alkyne halogenation reactions green chemistry; catalyst loading; biochar; silver nanoparticles (AgNPs); Coptis root; terminal alkyne halogenation reactions

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MDPI and ACS Style

Liu, C.; Gong, F.; Zou, X.; Wang, C.; Xiong, Z. Coptis Root-Derived Hierarchical Carbon-Supported Ag Nanoparticles for Efficient and Recyclable Alkyne Halogenation. Molecules 2025, 30, 567. https://doi.org/10.3390/molecules30030567

AMA Style

Liu C, Gong F, Zou X, Wang C, Xiong Z. Coptis Root-Derived Hierarchical Carbon-Supported Ag Nanoparticles for Efficient and Recyclable Alkyne Halogenation. Molecules. 2025; 30(3):567. https://doi.org/10.3390/molecules30030567

Chicago/Turabian Style

Liu, Cheng, Fangyuan Gong, Xiaochuan Zou, Cun Wang, and Zhengwei Xiong. 2025. "Coptis Root-Derived Hierarchical Carbon-Supported Ag Nanoparticles for Efficient and Recyclable Alkyne Halogenation" Molecules 30, no. 3: 567. https://doi.org/10.3390/molecules30030567

APA Style

Liu, C., Gong, F., Zou, X., Wang, C., & Xiong, Z. (2025). Coptis Root-Derived Hierarchical Carbon-Supported Ag Nanoparticles for Efficient and Recyclable Alkyne Halogenation. Molecules, 30(3), 567. https://doi.org/10.3390/molecules30030567

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