TY - JOUR
T1 - Cutting-edge advances in tailoring size, shape, and functionality of nanoparticles and nanostructures
T2 - A review
AU - Harish, Vancha
AU - Ansari, M. M.
AU - Tewari, Devesh
AU - Yadav, Awadh Bihari
AU - Sharma, Neelesh
AU - Bawarig, Sweta
AU - García-Betancourt, María Luisa
AU - Karatutlu, Ali
AU - Bechelany, Mikhael
AU - Barhoum, Ahmed
N1 - Publisher Copyright:
© 2023
PY - 2023/8
Y1 - 2023/8
N2 - Background: The versatility and immense potential of nanoparticles and nanostructures have made them crucial building blocks for a wide range of applications. Achieving precise control over their size, shape, and functionality has become a vital focus in nanotechnology research. Method: This comprehensive review explores the cutting-edge advancements in tailoring the size, shape, and functionality of nanoparticles and nanostructures. It covers a wide array of advanced mechanical, physical, chemical, and biological approaches utilized in their production. The review encompasses an extensive range of synthesis methods, including mechanical milling, high-pressure homogenization, mechanical alloying, mechanochemical synthesis, physical vapor deposition, laser pyrolysis, ion and electron irradiation, laser ablation synthesis, arc discharge synthesis, plasma synthesis, electrospinning, printing, chemical vapor deposition, sol-gel processes, aerosol-based processes, electrochemical deposition, polymerization synthesis, hydrothermal and solvothermal synthesis, microwave-assisted synthesis, ultrasonic synthesis, microbial synthesis, and plant extract-based synthesis. Finding: The ability to control the size, shape, composition, and surface functionalities of nanoparticles and nanostructures is dependent on factors such as raw materials, synthesis methods, and processing parameters. Consequently, the selection of the optimal synthesis method and precise control of reaction conditions and processing parameters are of utmost importance in obtaining nanomaterials with desired properties and achieving targeted applications.
AB - Background: The versatility and immense potential of nanoparticles and nanostructures have made them crucial building blocks for a wide range of applications. Achieving precise control over their size, shape, and functionality has become a vital focus in nanotechnology research. Method: This comprehensive review explores the cutting-edge advancements in tailoring the size, shape, and functionality of nanoparticles and nanostructures. It covers a wide array of advanced mechanical, physical, chemical, and biological approaches utilized in their production. The review encompasses an extensive range of synthesis methods, including mechanical milling, high-pressure homogenization, mechanical alloying, mechanochemical synthesis, physical vapor deposition, laser pyrolysis, ion and electron irradiation, laser ablation synthesis, arc discharge synthesis, plasma synthesis, electrospinning, printing, chemical vapor deposition, sol-gel processes, aerosol-based processes, electrochemical deposition, polymerization synthesis, hydrothermal and solvothermal synthesis, microwave-assisted synthesis, ultrasonic synthesis, microbial synthesis, and plant extract-based synthesis. Finding: The ability to control the size, shape, composition, and surface functionalities of nanoparticles and nanostructures is dependent on factors such as raw materials, synthesis methods, and processing parameters. Consequently, the selection of the optimal synthesis method and precise control of reaction conditions and processing parameters are of utmost importance in obtaining nanomaterials with desired properties and achieving targeted applications.
KW - Compositions
KW - Particle morphology
KW - Particle size
KW - Processing parameters
KW - Raw Materials
KW - Reaction conditions
UR - https://www.scopus.com/pages/publications/85165642373
U2 - 10.1016/j.jtice.2023.105010
DO - 10.1016/j.jtice.2023.105010
M3 - Review article
AN - SCOPUS:85165642373
SN - 1876-1070
VL - 149
JO - Journal of the Taiwan Institute of Chemical Engineers
JF - Journal of the Taiwan Institute of Chemical Engineers
M1 - 105010
ER -