Pagay Vinay, Santiago Michael, Sessoms David A, Huber Erik J, Vincent Olivier, Pharkya Amit, Corso Thomas N, Lakso Alan N, Stroock Abraham D
Department of Horticulture, Cornell University, Ithaca, NY 14853, USA.
Lab Chip. 2014 Aug 7;14(15):2806-17. doi: 10.1039/c4lc00342j. Epub 2014 Jun 5.
Tensiometers sense the chemical potential of water (or water potential, Ψw) in an external phase of interest by measuring the pressure in an internal volume of liquid water in equilibrium with that phase. For sub-saturated phases, the internal pressure is below atmospheric and frequently negative; the liquid is under tension. Here, we present the initial characterization of a new tensiometer based on a microelectromechanical pressure sensor and a nanoporous membrane. We explain the mechanism of operation, fabrication, and calibration of this device. We show that these microtensiometers operate stably out to water potentials below -10 MPa, a tenfold extension of the range of current tensiometers. Finally, we present use of the device to perform an accurate measurement of the equation of state of liquid water at pressures down to -14 MPa. We conclude with a discussion of outstanding design considerations, and of the opportunities opened by the extended range of stability and the small form factor in sensing applications, and in fundamental studies of the thermodynamic properties of water.
张力计通过测量与感兴趣的外部相处于平衡状态的液态水内部体积中的压力,来感知该外部相中水的化学势(或水势,Ψw)。对于亚饱和相,内部压力低于大气压且通常为负;液体处于张力状态。在此,我们展示了一种基于微机电压力传感器和纳米多孔膜的新型张力计的初始特性。我们解释了该装置的操作、制造和校准机制。我们表明,这些微张力计在水势低于 -10 MPa 时仍能稳定运行,这将当前张力计的测量范围扩展了十倍。最后,我们展示了该装置在压力低至 -14 MPa 时对液态水状态方程进行精确测量的应用。我们最后讨论了一些尚待解决的设计考量,以及稳定性范围的扩展和小尺寸外形在传感应用以及水的热力学性质基础研究中所带来的机遇。