Hydrophobic Microphase Separation‐Driven Polycondensation and Carbonization for the Formation of Carbonized Polymer Dots

ABSTRACT Hydrothermal synthesis has been widely used to prepare carbonized polymer dots (CPDs) in a one‐pot manner, yet how initial precursors evolve into nanoparticles in water‐rich environments remains poorly understood. Here, hydrophobic microphase separation is identified as a microenvironmental mechanism governing CPDs formation. CPDs are proved to possess a hydrophobic core and a hydrophilic shell, consistent with nanoscopic domains of reduced water accessibility during hydrothermal growth. These hydrophobic microphases locally shift reversible dehydration equilibria toward water loss, particularly dehydrative condensation, thereby sustaining polycondensation, crosslinking, and carbonization. The resulting microphase‐promoted dehydration process drives the nucleation and growth of CPDs. By independently tuning monomer hydrophobicity and crosslinking confinement, mechanism‐guided regulation of CPDs size and product fraction is achieved. These findings establish microphase‐promoted dehydration as a chemical principle for the rational hydrothermal synthesis of carbon nanomaterials.

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Publication Details

Journal
Angewandte Chemie
Published
2026-10-05
DOI
https://doi.org/10.1002/ange.7521352
Primary Topic
Carbon and Quantum Dots Applications
Type
article
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article

Hydrophobic Microphase Separation‐Driven Polycondensation and Carbonization for the Formation of Carbonized Polymer Dots

Songyuan Tao, 谢雅典, Yunfeng Li, Bai Jun Yang et al.
Angewandte Chemie
Carbon and Quantum Dots Applications
article

Hydrophobic Microphase Separation‐Driven Polycondensation and Carbonization for the Formation of Carbonized Polymer Dots

Songyuan Tao, 谢雅典, Yunfeng Li, Bai Jun Yang, Yixiong Duan, Xiao Han, Zhicheng Zhu, Chunlei Xia, Hao Wang, Yue Yu
article en

Abstract

ABSTRACT Hydrothermal synthesis has been widely used to prepare carbonized polymer dots (CPDs) in a one‐pot manner, yet how initial precursors evolve into nanoparticles in water‐rich environments remains poorly understood. Here, hydrophobic microphase separation is identified as a microenvironmental mechanism governing CPDs formation. CPDs are proved to possess a hydrophobic core and a hydrophilic shell, consistent with nanoscopic domains of reduced water accessibility during hydrothermal growth. These hydrophobic microphases locally shift reversible dehydration equilibria toward water loss, particularly dehydrative condensation, thereby sustaining polycondensation, crosslinking, and carbonization. The resulting microphase‐promoted dehydration process drives the nucleation and growth of CPDs. By independently tuning monomer hydrophobicity and crosslinking confinement, mechanism‐guided regulation of CPDs size and product fraction is achieved. These findings establish microphase‐promoted dehydration as a chemical principle for the rational hydrothermal synthesis of carbon nanomaterials.

Angewandte Chemie
Jilin University (CN), State Key Laboratory of Supramolecular Structure and Materials
Openalex Percentile: Top 27%
Carbon and Quantum Dots Applications
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Hydrophobic Microphase Separation‐Driven Polycondensation and Carbonization for the Formation of Carbonized Polymer Dots — Songyuan Tao, 谢雅典, et al. · Angewandte Chemie (2026) | TGRS Research Map | TGRS