arrow
Return

Stimulus-responsive Pickering emulsion droplet-based microreactors for green biphasic catalysis

delete2025-11-03
delete0
delete
OA
AI
A
Ansar Abbas
张晓茜 cover
张晓茜 (Xiaoqian Zhang)
S
Sameer Hussain
R
Ruizhao Cai
张明慧 cover
张明慧 (Minghui Zhang)
T
Tie Chong
B
Bernard P. Binks *
徐四龙 (Silong Xu) *
DOI:10.1038/s42004-025-01698-6delete
deleteOriginal
deleteShare
deleteSave
View PDF
Abstract

Abstract

En 中文
Pickering emulsions (PEs) are constantly emerging as promising platforms in biphasic catalysis. However, the existing nanoparticle-stabilized PE systems suffer from several drawbacks, such as reactant diffusion, particle leaching, incompatible reaction environments, tedious workups and poor catalyst recovery. The use of nanogel particles in PE catalysis could be highly advantageous in streamlining processes. Herein, we report a general approach to designing a PE droplet-based reactor by using a combination of egg white nanogel particles (EWNGs, 0.01 wt.%) and the newly synthesized switchable surfactant 3-(10-carboxydecyl)-1-methyl-1H-imidazolium bromide (ImDec-COOH) at a very low concentration of 0.50 wt.%. This versatile approach helps EWNGs in PEs overcome existing limitations, such as reactant diffusion and incompatible reaction environments, while stimulus-responsive surfactants increase the pH of PE systems. Thus, nanogel particles stabilize the PE system, and imidazolium-based surfactants effectively facilitate organic transformation through biphasic catalysis. As a proof-of-concept, the as-developed microreactor was employed to achieve a one-pot synthesis of benzothiazoles and benzoxazole in high yield, in situ product separation and excellent catalyst recovery. mlExisting nanoparticle-stabilized Pickering emulsions have several drawbacks, such as reactant diffusion, particle leaching, incompatible reaction environments and poor catalyst recovery. To overcome those limitations, the authors design a droplet-based reactor using egg white nanogel particles and a stimulus-responsive surfactant at low concentration, which enables one-pot synthesis of benzothiazoles and benzoxazole in high yield, in situ product separation and catalyst recovery.
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

Communications Chemistry cover
Communications Chemistry
IF:
6.2
Papers:
2.2K
Citations:
6.4K

Organization

D
Department of Chemistry
Scholars:
7.2K
Papers: 3.2K
Citations: 7
H
health science center
Scholars:
446
Papers: 157
Citations: 0
researcher View more organizations