TY - JOUR
T1 - Water Flux Induced Reorientation of Liquid Crystals
AU - Ramezani-Dakhel, Hadi
AU - Sadati, Monirosadat
AU - Zhang, Rui
AU - Rahimi, Mohammad
AU - Kurtenbach, Khia
AU - Roux, Benoît
AU - De Pablo, Juan J.
N1 - Publisher Copyright:
© 2017 American Chemical Society.
PY - 2017/12/27
Y1 - 2017/12/27
N2 - It is well understood that the adsorption of solutes at the interface between a bulk liquid crystal phase and an aqueous phase can lead to orientational or anchoring transitions. A different principle is introduced here, whereby a transient reorientation of a thermotropic liquid crystal is triggered by a spontaneous flux of water across the interface. A critical water flux can be generated by the addition of an electrolyte to the bulk aqueous phase, leading to a change in the solvent activity; water is then transported through the liquid crystal phase and across the interface. The magnitude of the spontaneous water flux can be controlled by the concentration and type of solutes, as well as the rate of salt addition. These results present new, previously unappreciated fundamental principles that could potentially be used for the design of materials involving transient gating mechanisms, including biological sensors, drug delivery systems, separation media, and molecular machines.
AB - It is well understood that the adsorption of solutes at the interface between a bulk liquid crystal phase and an aqueous phase can lead to orientational or anchoring transitions. A different principle is introduced here, whereby a transient reorientation of a thermotropic liquid crystal is triggered by a spontaneous flux of water across the interface. A critical water flux can be generated by the addition of an electrolyte to the bulk aqueous phase, leading to a change in the solvent activity; water is then transported through the liquid crystal phase and across the interface. The magnitude of the spontaneous water flux can be controlled by the concentration and type of solutes, as well as the rate of salt addition. These results present new, previously unappreciated fundamental principles that could potentially be used for the design of materials involving transient gating mechanisms, including biological sensors, drug delivery systems, separation media, and molecular machines.
UR - https://www.webofscience.com/wos/woscc/full-record/WOS:000418706200017
UR - https://openalex.org/W2775403695
UR - https://www.scopus.com/pages/publications/85040115037
U2 - 10.1021/acscentsci.7b00495
DO - 10.1021/acscentsci.7b00495
M3 - Journal Article
SN - 2374-7943
VL - 3
SP - 1345
EP - 1349
JO - ACS Central Science
JF - ACS Central Science
IS - 12
ER -