A1 Refereed original research article in a scientific journal
Deuterated Water Accelerates Phase-Separated Droplet Formation and Enables Directional Motion; 
Authors: Lin, Caihong; Yu, Jingjing; Qi, Dawei; Shi, Xuncheng; Niemi-Aro, Tuomas; Li, Jianwei
Publisher: American Chemical Society (ACS)
Publication year: 2026
Volume: 148
Issue: 24
First page : 24900
Last page: 24910
ISSN: 0002-7863
eISSN: 1520-5126
DOI: https://doi.org/10.1021/jacs.6c03395
Publication's open availability at the time of reporting: Open Access
Publication channel's open availability : Partially Open Access publication channel
Web address : https://doi.org/10.1021/jacs.6c03395
Self-archived copy’s web address: https://research.utu.fi/converis/portal/detail/Publication/527035236
Self-archived copy's licence: CC BY
Self-archived copy's version: Publisher`s PDF
The spatiotemporal coordination of compartment formation and directed transport is fundamental to the cellular organization. However, replicating these coupled behaviors in fully aqueous synthetic systems remains challenging. We report an isotopic solvent signaling strategy that leverages the physicochemical differences between deuterated water (D2O) and light water (H2O) to control the liquid–liquid phase separation (LLPS) and motility of dynamic covalent droplets. Our system utilizes the in situ generation of cationic imine surfactants that complex with anionic macrocycles to form coacervate droplets. We demonstrate that D2O significantly accelerates droplet formation compared to that of H2O by promoting early association and amplifying the hydrophobic interactions associated with imine surfactants. Furthermore, by establishing a spatial H2O/D2O gradient, we trigger a surface-tension imbalance that drives the directional transport of droplets from D2O-rich to H2O-rich regions via Marangoni flow. These motile droplets can move faster than that without an isotope gradient and perform complex functions using fluorescent dyes as a demonstration. These functions include autonomous cargo transport and chemical exchange with their surroundings during migration. This work establishes isotopic substitution as a powerful and noninvasive trigger for governing supramolecular assembly and motility. It offers a new dimension for engineering adaptive, lifelike soft matter.
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Funding information in the publication:
We thank the Science and Technology Development Fund, Macau SAR (0119/2025/RIB2), the Sigrid Jusélius Foundation (Senior Researcher Fellowship for J.L.), and the Academy of Finland (Decision No.318524) for financial support. D.Q. acknowledges the financial support for his postdoctoral research from the Kvantum institute (University of Oulu). We gratefully acknowledge HiLIFE NMR unit at the University of Helsinki, a member of Instruct-ERIC Centre Finland, FINStruct, and Biocenter Finland. We also acknowledge Turku Protein Core, Turku Centre for Chemical and Molecular Analytic, and Cell Imaging and Cytometry core at the University of Turku. We thank Dr. Tassos Papageorgiou for providing imaging-related materials, Dr. Jarmo Käpylä for his support on ITC experiment, and Dr. Jouko Sandholm for technical support on FRAP experiment.