From Barrier at Water–Oil to Conduits at Ice–Oil: Ice-Crack-Enabled Chaperone Solvent Drives On-Demand Polymer Phase Transfer

Abstract Phase transfer of polymer nanoparticles (NPs) across immiscible liquids typically demands surface functionalization or mechanical agitation. Here, we demonstrate a proof-of-concept, modification-free transfer mechanism driven by a controlled freeze–thaw process. Using a hydrophobic perylene diimide (PDI) derivative (PDI-N-DAN) as a model, we show that freezing transforms the water–oil interface into an oil–ice interface threaded with temporary nanocracks. A chaperone solvent (2,2,2-trifluoroethanol, TFE) forms a directionally ordered layer within these conduits. This interfacial sleeve lowers the free-energy barrier, allowing lipophilic PDI-N-DAN NPs) to enter the cracks. Subsequently, as the ice melts, TFE templates solvent-shell reorganization, converting them into hydrophilic PDI-N-DAN NPs to yield stable water dispersions. Validated by systematic experiments and molecular dynamics simulation, this strategy repurposes ubiquitous ice defects to program interfacial chemistry, offering a reliable route for on-demand polymer phase transfer.

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Publication Details

Journal
Nano Letters
Published
2026-09-25
DOI
https://doi.org/10.1021/acs.nanolett.6c02641
Primary Topic
Nanopore and Nanochannel Transport Studies
Type
article
Field-Weighted Citation Impact
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From Barrier at Water–Oil to Conduits at Ice–Oil: Ice-Crack-Enabled Chaperone Solvent Drives On-Demand Polymer Phase Transfer

Xiao Cheng Zeng, Yao Liu, Yu Chai, Yuchen Fu et al.
Nano Letters
Nanopore and Nanochannel Transport Studies
article

From Barrier at Water–Oil to Conduits at Ice–Oil: Ice-Crack-Enabled Chaperone Solvent Drives On-Demand Polymer Phase Transfer

Xiao Cheng Zeng, Yao Liu, Yu Chai, Yuchen Fu, Sai Zhao, 何刘琳, Wei Chen, Jian Jiang, Changxiong Huang
article en

Abstract

Abstract Phase transfer of polymer nanoparticles (NPs) across immiscible liquids typically demands surface functionalization or mechanical agitation. Here, we demonstrate a proof-of-concept, modification-free transfer mechanism driven by a controlled freeze–thaw process. Using a hydrophobic perylene diimide (PDI) derivative (PDI-N-DAN) as a model, we show that freezing transforms the water–oil interface into an oil–ice interface threaded with temporary nanocracks. A chaperone solvent (2,2,2-trifluoroethanol, TFE) forms a directionally ordered layer within these conduits. This interfacial sleeve lowers the free-energy barrier, allowing lipophilic PDI-N-DAN NPs) to enter the cracks. Subsequently, as the ice melts, TFE templates solvent-shell reorganization, converting them into hydrophilic PDI-N-DAN NPs to yield stable water dispersions. Validated by systematic experiments and molecular dynamics simulation, this strategy repurposes ubiquitous ice defects to program interfacial chemistry, offering a reliable route for on-demand polymer phase transfer.

Nano Letters
Lawrence Berkeley National Laboratory (US), City University of Hong Kong (HK), Beijing University of Chemical Technology (CN)
Clean water and sanitation
Openalex Percentile: Top 21%
Nanopore and Nanochannel Transport Studies
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From Barrier at Water–Oil to Conduits at Ice–Oil: Ice-Crack-Enabled Chaperone Solvent Drives On-Demand Polymer Phase Transfer — Xiao Cheng Zeng, Yao Liu, et al. · Nano Letters (2026) | TGRS Research Map | TGRS