TY - JOUR
T1 - Precise morphology control of all-organic core-shell droplets for synthesis of microencapsulated phase change materials through AC electric fields
AU - Fang, Weidong
AU - Tao, Zhi
AU - Li, Haiwang
AU - Liu, Sihang
AU - Ee, Yen Jie
AU - Yin, Shuai
AU - Wong, Teckneng
AU - Huang, Yi
N1 - Publisher Copyright:
© 2025 Elsevier Inc.
PY - 2025/5
Y1 - 2025/5
N2 - Hypothesis: Complex emulsions usually consist of aqueous phases, like oil-in-water-in-oil (o/w/o) and water-in-oil-in-water (w/o/w), serving foundational roles in colloid science. Oil-in-oil-oil (o/o/o) emulsions offer new avenues for non-aqueous reagents but face challenges in balancing the forces between multiple organic phases. Experiments: In this work, we generate o/o/o emulsions by integrating an AC electric field with a double cross-junction microchannel. The characteristics of generating dynamics is observed and analyzed based on the interaction between the electric force, viscous force, and interfacial tension. Findings: We first establish an innovative evaluation theory to quantify the generation efficiency for complex emulsions. The results show that the electric effect improves the generation efficiency and monodispersity across a variety of high flow rates compared with conventional methods, enabling the flexibility in adjusting droplet sizes and core–shell structures. At low flow rates, the breakup of core–shell droplets can also be controlled by the electric force under different types of o/o/o emulsions. The inner phase could be substituted with alkane phase-change materials and processed into microencapsulated phase-change materials (MEPCMs). These organic MEPCMs could be integrated into electrolytes due to their ultra-low electric conductivity, which shows a significant temperature buffering effect in lithium batteries. This research not only enhances our understanding of colloidal systems but also fabricates core–shell structures with customized functionalities, paving the way for advancements in energy conversion and management, drug delivery, and materials engineering.
AB - Hypothesis: Complex emulsions usually consist of aqueous phases, like oil-in-water-in-oil (o/w/o) and water-in-oil-in-water (w/o/w), serving foundational roles in colloid science. Oil-in-oil-oil (o/o/o) emulsions offer new avenues for non-aqueous reagents but face challenges in balancing the forces between multiple organic phases. Experiments: In this work, we generate o/o/o emulsions by integrating an AC electric field with a double cross-junction microchannel. The characteristics of generating dynamics is observed and analyzed based on the interaction between the electric force, viscous force, and interfacial tension. Findings: We first establish an innovative evaluation theory to quantify the generation efficiency for complex emulsions. The results show that the electric effect improves the generation efficiency and monodispersity across a variety of high flow rates compared with conventional methods, enabling the flexibility in adjusting droplet sizes and core–shell structures. At low flow rates, the breakup of core–shell droplets can also be controlled by the electric force under different types of o/o/o emulsions. The inner phase could be substituted with alkane phase-change materials and processed into microencapsulated phase-change materials (MEPCMs). These organic MEPCMs could be integrated into electrolytes due to their ultra-low electric conductivity, which shows a significant temperature buffering effect in lithium batteries. This research not only enhances our understanding of colloidal systems but also fabricates core–shell structures with customized functionalities, paving the way for advancements in energy conversion and management, drug delivery, and materials engineering.
KW - AC electric field
KW - Core-shell droplet
KW - Phase change material
KW - Programmable morphology control
UR - https://www.scopus.com/pages/publications/85216128872
U2 - 10.1016/j.jcis.2025.01.206
DO - 10.1016/j.jcis.2025.01.206
M3 - 文章
C2 - 39879781
AN - SCOPUS:85216128872
SN - 0021-9797
VL - 685
SP - 961
EP - 974
JO - Journal of Colloid and Interface Science
JF - Journal of Colloid and Interface Science
ER -