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Towards a microscale characterization of TEP-like organic aggregates: a comprehensive suite for image analysis of two-dimensional and three-dimensional structures

delete2025-09-10
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PRE
AI
S
Shujuan Meng
S
Shanshan Hou
W
Wenhong Fan
B
Bihui Niu
L
Linyan Yang
W
Wen‐Da Oh
张萌 (Meng Zhang) *
DOI:10.1007/s11783-025-2082-8delete
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Abstract

Abstract

En 中文
Transparent exopolymer particles (TEP) are abundant gel-like colloids pivotal in marine carbon cycling and water treatment processes. Their environmental roles are governed by hierarchical architectures, yet in-situ structural characterization remains challenging due to transparency, fragility, and polymorphism. To address this, we developed an integrated image analysis suite combining advanced processing with statistical modeling, enabling simultaneous 2D/3D quantification of TEP morphology and intra-particle heterogeneity. This framework generates multidimensional descriptors (e.g., fractal dimensions, density gradients) for individual aggregates and assemblies. Applied to cation-mediated aggregation, it revealed divergent bridging behaviors. Mg2+ induced moderate size changes (2.99–4.08 µm), while Ca2+ drove exponential growth (1.81–187.76 µm) when ionic strength increasing from 1 to 5 mmol/L. Concurrent form factor reductions (Mg: 0.31 to 0.16; Ca: 0.44 to 0.19) quantitatively distinguish aggregation pathways. The method deciphers ion-specific assembly mechanisms and resolves subtle colloidal interactions, establishing a paradigm for colloidal system analysis with possible applications extending beyond TEP research to other subjects such as microplastic aggregation.
Keywords:
Transparent exopolymer particles
Image analysis
Morphological features
2D and 3D modelling

Journal

Frontiers of Environmental Science and Engineering cover
Frontiers of Environmental Science and Engineering
IF:
6.4
Papers:
1.7K
Citations:
5.6K

Organization

S
School of Resources and Environmental Engineering
Scholars:
245
Papers: 84
Citations: 0
S
School of Materials Science and Engineering
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3.4K
Papers: 962
Citations: 5
E
electronic and information engineering
Scholars:
341
Papers: 127
Citations: 1
S
School of Chemical Sciences
Scholars:
122
Papers: 65
Citations: 1
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