TY - JOUR
T1 - Fast and easy synthesis of silver, copper, and bimetallic nanoparticles on cellulose paper assisted by ultrasound
AU - Araya-Hermosilla, Rodrigo
AU - Martínez, Jessica
AU - Loyola, César Zúñiga
AU - Ramírez, Sara
AU - Salazar, Sebastián
AU - Henry, Charles S.
AU - Lavín, Roberto
AU - Silva, Nataly
N1 - Publisher Copyright:
© 2023
PY - 2023/10
Y1 - 2023/10
N2 - This work focuses on a systematic method to produce Ag, Cu, and Ag/Cu metallic nanoparticles (MNPs) in situ assisted with ultrasound on cellulose paper. By tuning the concentration of AgNO3 and CuSO4 salt precursors and ultrasound time, combined with a fixed concentration of ascorbic acid (AA) as a reducing agent, it was possible to control the size, morphology, and polydispersity of the resulting MNPs on cellulose papers. Notably, high yield and low polydispersity of MNPs and bimetallic nanoparticles are achieved by increasing the sonication time on paper samples pre-treated with salt precursors before reduction with AA. Moreover, mechanical analysis on paper samples presenting well-dispersed and distributed MNPs showed slightly decreasing values of Young's modulus compared to neat papers. The strain at break is substantially improved in papers containing solely Ag or Cu MNPs. The latter suggests that the elastic/plastic transition and deformation of papers are tuned by cellulose and MNPs interfacial interaction, as indicated by mechanical analysis. The proposed method provides insights into each factor affecting the sonochemistry in situ synthesis of MNPs on cellulose papers. In addition, it offers a straightforward alternative to scale up the production of MNPs on paper, ensuring an eco-friendly method.
AB - This work focuses on a systematic method to produce Ag, Cu, and Ag/Cu metallic nanoparticles (MNPs) in situ assisted with ultrasound on cellulose paper. By tuning the concentration of AgNO3 and CuSO4 salt precursors and ultrasound time, combined with a fixed concentration of ascorbic acid (AA) as a reducing agent, it was possible to control the size, morphology, and polydispersity of the resulting MNPs on cellulose papers. Notably, high yield and low polydispersity of MNPs and bimetallic nanoparticles are achieved by increasing the sonication time on paper samples pre-treated with salt precursors before reduction with AA. Moreover, mechanical analysis on paper samples presenting well-dispersed and distributed MNPs showed slightly decreasing values of Young's modulus compared to neat papers. The strain at break is substantially improved in papers containing solely Ag or Cu MNPs. The latter suggests that the elastic/plastic transition and deformation of papers are tuned by cellulose and MNPs interfacial interaction, as indicated by mechanical analysis. The proposed method provides insights into each factor affecting the sonochemistry in situ synthesis of MNPs on cellulose papers. In addition, it offers a straightforward alternative to scale up the production of MNPs on paper, ensuring an eco-friendly method.
KW - Bimetallic nanoparticles
KW - Cellulose
KW - Composite
KW - Copper
KW - Paper
KW - Silver
KW - Sonochemistry
KW - Synthesis
KW - Ultrasound
UR - http://www.scopus.com/inward/record.url?scp=85167441425&partnerID=8YFLogxK
U2 - 10.1016/j.ultsonch.2023.106545
DO - 10.1016/j.ultsonch.2023.106545
M3 - Article
C2 - 37572428
AN - SCOPUS:85167441425
SN - 1350-4177
VL - 99
JO - Ultrasonics Sonochemistry
JF - Ultrasonics Sonochemistry
M1 - 106545
ER -