» Articles » PMID: 33613075

Copper Nanoparticles: Green Synthesis and Managing Fruit Rot Disease of Chilli Caused by

Overview
Specialty Biology
Date 2021 Feb 22
PMID 33613075
Citations 17
Authors
Affiliations
Soon will be listed here.
Abstract

The present study was focused on synthesis and characterization of copper nanoparticles to evaluate their efficacy against fruit rot pathogen of chilli crop. The green synthesis of nanoparticles was carried out by using extracts of Eucalyptus and Mint leaves. The synthesis of copper nanoparticles was confirmed by XRD, PSA, SEM and TEM. The average size of these particles synthesized by Eucalyptus leaf extract (CuNP-E) ranged from 10 to 130 nm, while as size of Mint leaf extract synthesized particles (CuNP-M) ranged from 23 to 39 nm, thus confirming their nano size. These green synthesized copper nanoparticles were evaluated against where Carbendazim 50 WP @ 500 ppm and copper oxychloride 50 WP @ 2500 ppm served as standard checks. The mycelia inhibition of Colletotrichum capsici caused by copper nanoparticles was studied on PDA medium. CuNP-M @ 1000 ppm showed highest mycelial inhibition of 99.78% followed by 93.75% at 500 ppm and CuNP-E @ 1000 ppm compared to standard fungicides, carbendazim 50 WP @ 500 ppm (72.82%), and copper oxychloride 50 WP @ 2500 ppm (85.85%). The CuNP-M @ 500 ppm were significantly superior to carbendazim 50 WP @ 500 ppm and copper oxychloride 50 WP @ 2500 ppm, but was statistically at par with CuNP-E @ 1000 ppm. This shows effectiveness of much lower concentration of copper nanoparticles compared to conventional fungicides. In detached fruit method, nanoparticles applied before inoculation of pathogen showed better results with regard to incubation period, lesion number and lesion size than after inoculation of pathogen. The present study reveals a simple, convenient, non-toxic and cost-efficient technique for the synthesis of nanoparticles and their effectiveness against Colletotrichum capsici. CuNP-M first time synthesized and evaluated against Colletotrichum capsici performed better than CuNP-E.

Citing Articles

Metal Nanoparticles Obtained by Green Hydrothermal and Solvothermal Synthesis: Characterization, Biopolymer Incorporation, and Antifungal Evaluation Against .

Caguana T, Cruzat C, Herrera D, Pena D, Arevalo V, Vera M Nanomaterials (Basel). 2025; 15(5).

PMID: 40072182 PMC: 11901758. DOI: 10.3390/nano15050379.


Eco-friendly synthesis of ZnO, CuO, and ZnO/CuO nanoparticles using extract of spent Pleurotus ostreatus substrate, and their antioxidant and anticancer activities.

Ngwenya S, Sithole N, Ramachela K, Mthiyane D, Mwanza M, Singh M Discov Nano. 2025; 20(1):35.

PMID: 39945970 PMC: 11825426. DOI: 10.1186/s11671-025-04199-6.


Enhancing plant resilience: Nanotech solutions for sustainable agriculture.

Ahmad Z, Niyazi S, Firdoos A, Wang C, Manzoor M, Ramakrishnan M Heliyon. 2024; 10(23):e40735.

PMID: 39717575 PMC: 11665360. DOI: 10.1016/j.heliyon.2024.e40735.


Antifungal Action of Metallic Nanoparticles Against Fungicide-Resistant Pathogens Causing Main Postharvest Lemon Diseases.

Baigorria C, Cerioni L, Debes M, Ledesma A, Alastuey P, Tirado M J Fungi (Basel). 2024; 10(11).

PMID: 39590700 PMC: 11595958. DOI: 10.3390/jof10110782.


TiO nanoparticles: Green synthesis and their role in lessening the damage of in sorghum.

Nabi G, Anjum T, Aftab Z, Rizwana H, Akram W Food Sci Nutr. 2024; 12(10):7379-7391.

PMID: 39479671 PMC: 11521671. DOI: 10.1002/fsn3.4297.


References
1.
Shankar S, Rai A, Ahmad A, Sastry M . Rapid synthesis of Au, Ag, and bimetallic Au core-Ag shell nanoparticles using Neem (Azadirachta indica) leaf broth. J Colloid Interface Sci. 2004; 275(2):496-502. DOI: 10.1016/j.jcis.2004.03.003. View

2.
Ankamwar B, Damle C, Ahmad A, Sastry M . Biosynthesis of gold and silver nanoparticles using Emblica Officinalis fruit extract, their phase transfer and transmetallation in an organic solution. J Nanosci Nanotechnol. 2005; 5(10):1665-71. DOI: 10.1166/jnn.2005.184. View

3.
Hutchison J . Greener nanoscience: a proactive approach to advancing applications and reducing implications of nanotechnology. ACS Nano. 2009; 2(3):395-402. DOI: 10.1021/nn800131j. View

4.
Lamsal K, Kim S, Jung J, Kim Y, Kim K, Lee Y . Inhibition Effects of Silver Nanoparticles against Powdery Mildews on Cucumber and Pumpkin. Mycobiology. 2012; 39(1):26-32. PMC: 3385079. DOI: 10.4489/MYCO.2011.39.1.026. View

5.
Shamshi Hassan M, Amna T, Yang O, El-Newehy M, Al-Deyab S, Khil M . Smart copper oxide nanocrystals: synthesis, characterization, electrochemical and potent antibacterial activity. Colloids Surf B Biointerfaces. 2012; 97:201-6. DOI: 10.1016/j.colsurfb.2012.04.032. View