Linking mechanochemistry with the green chemistry principles: Review article

Связывание механохимии с принципами зелёной химии: обзорная статья
Christophe Len, Alba Bala, Pere Fullana–i–Palmer, Sergi Arfelis, Ana I. Martín-Perales, Remy Nguyen, Antonio Pérez, Igor Cherubin, Irene Malpartida
2024-07-01

ball millingcontinuous-flow mechanochemistrygreen chemistrymechanochemistrytwin-screw extrusion
The need to explore contemporary alternatives for industrial production has driven the development of innovative techniques that address critical limitations linked to traditional batch mechanochemistry. One particularly promising strategy involves the integration of flow processes with mechanochemistry. Three noteworthy technologies in this domain are single-screw extrusion (SSE) and twin-screw extrusion (TSE) and Impact (Induction) in Continuous-flow Heated Mechanochemistry (ICHeM). These technologies go beyond the industrial production of polymers, extending to the synthesis of active pharmaceutical ingredients, the fabrication of (nano)materials, and the extraction of high-added value products through the valorisation of biomass and waste materials. In accordance with the principles of green chemistry, ball milling processes are generally considered greener compared to conventional solvothermal processes. In fact, ball milling processes require less solvent, enhance reaction rates and reaction conversion by increasing surface area and substituting thermal energy with mechanochemical energy, among others. Special attention will be given to the types of products, reactants, size of the milling balls and reaction conditions, selecting 60 articles after applying a screening methodology during the period 2020-2022. This paper aims to compile and analyze the cutting edge of research in utilizing mechanochemistry for green chemistry applications.
1
Ball milling generally aligns better with green chemistry than conventional solvothermal processing because it uses less solvent and can accelerate reactions and improve conversion.
2
Flow mechanochemistry extends beyond polymer production to active pharmaceutical ingredients, nanomaterials, and valorization of biomass and waste materials.
3
Integrating continuous-flow processing with mechanochemistry, particularly SSE, TSE, and ICHeM, addresses limitations of traditional batch mechanochemistry.
4
Mechanochemical energy can replace part of the thermal energy input while increased surface area enhances reaction rates and conversion.
5
The review screens and analyzes 60 articles published during 2020–2022, focusing on products, reactants, milling-ball size, and reaction conditions.

Mechanochemical processes and flow-based mechanochemical technologies for green chemistry applications

Their application, reaction performance, scalability, and alignment with green chemistry principles across synthesis, materials fabrication, and biomass/waste valorisation

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2024-07-01
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Authors
Christophe Len
Alba Bala
Pere Fullana–i–Palmer
Sergi Arfelis
Ana I. Martín-Perales
Remy Nguyen
Antonio Pérez
Igor Cherubin
Irene Malpartida
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