Electromanipulating Water Flow in Nanochannels

被引:55
|
作者
Kou, Jianlong [1 ,2 ]
Yao, Jun [1 ]
Lu, Hangjun [2 ]
Zhang, Bo [1 ]
Li, Aifen [1 ]
Sun, Zhixue [1 ]
Zhang, Jianguang [1 ]
Fang, Yunzhang [2 ]
Wu, Fengmin [2 ]
Fan, Jintu [3 ]
机构
[1] China Univ Petr East China, State Key Lab Heavy Oil Proc, Qingdao 266580, Peoples R China
[2] Zhejiang Normal Univ, Inst Condensed Matter Phys, Jinhua 321004, Peoples R China
[3] Cornell Univ, Dept Fiber Sci & Apparel Design, Ithaca, NY 14853 USA
关键词
electromanipulation; nanochannels; water transport; CARBON NANOTUBES; TRANSPORT; CHANNEL; PERMEATION; AQUAPORIN-1; SELECTIVITY; CONDUCTION; MOLECULES; VIBRATION; RESONANCE;
D O I
10.1002/anie.201408633
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In sharp contrast to the prevailing view that a stationary charge outside a nanochannel impedes water permeation across the nanochannel, molecular dynamics simulations show that a vibrational charge outside the nanochannel can promote water flux. In the vibrational charge system, a decrease in the distance between the charge and the nanochannel leads to an increase in the water net flux, which is contrary to that of the fixed-charge system. The increase in net water flux is the result of the vibrational charge-induced disruption of hydrogen bonds when the net water flux is strongly affected by the vibrational frequency of the charge. In particular, the net flux is reaches a maximum when the vibrational frequency matches the inherent frequency of hydrogen bond inside the nanochannel. This electromanipulating transport phenomenon provides an important new mechanism of water transport confined in nanochannels.
引用
收藏
页码:2351 / 2355
页数:5
相关论文
共 50 条
  • [21] Investigation into the microscopic mechanisms influencing convective heat transfer of water flow in graphene nanochannels
    Marable, Drew C.
    Shin, Seungha
    Nobakht, Ali Yousefzadi
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2017, 109 : 28 - 39
  • [22] Water flow in graphene nanochannels driven by imposed thermal gradients: the role of flexural phonons
    Oyarzua, Elton
    Walther, Jens H. H.
    Zambrano, Harvey A. A.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2023, 25 (06) : 5073 - 5081
  • [23] Heat and mass transfer of water flow in graphene nanochannels: effect of pressure and interfacial interaction
    Pan, Xiong
    Jin, Hanhui
    Ku, Xiaoke
    Guo, Yu
    Fan, Jianren
    RSC ADVANCES, 2024, 14 (40) : 29024 - 29038
  • [24] Velocity slip of liquid flow in nanochannels
    Cao Bing-Yang
    Chen Min
    Goo Zeng-Yuan
    ACTA PHYSICA SINICA, 2006, 55 (10) : 5305 - 5310
  • [25] Multiphase flow in micro- and nanochannels
    Shui, Lingling
    Eijkel, Jan C. T.
    van den Berg, Albert
    SENSORS AND ACTUATORS B-CHEMICAL, 2007, 121 (01): : 263 - 276
  • [26] Experimental verification of Poiseuille flow in nanochannels
    Han, Eui Don
    Kim, Byeong Hee
    Seo, Young Ho
    JAPANESE JOURNAL OF APPLIED PHYSICS, 2019, 58 (06)
  • [27] Effects of wall roughness on flow in nanochannels
    Sofos, Filippos D.
    Karakasidis, Theodoros E.
    Liakopoulos, Antonios
    PHYSICAL REVIEW E, 2009, 79 (02):
  • [28] Flow characteristics of silicon oil in nanochannels
    Yong Wang
    Fu-quan Song
    Kai Ji
    Ye-heng Sun
    Wei-yao Zhu
    Xiao-hong Wang
    Journal of Hydrodynamics, 2021, 33 : 1282 - 1290
  • [29] Flow characteristics of silicon oil in nanochannels
    Wang, Yong
    Song, Fu-quan
    Ji, Kai
    Sun, Ye-heng
    Zhu, Wei-yao
    Wang, Xiao-hong
    JOURNAL OF HYDRODYNAMICS, 2021, 33 (06): : 1282 - 1290
  • [30] Quantum effects of gas flow in nanochannels
    Wang, Xuefang
    Dong, Xianshan
    Xiao, Junfeng
    Zhang, YuYu
    Xu, Jianfeng
    Liu, Sheng
    Gao, Liang
    NANOTECHNOLOGY REVIEWS, 2021, 10 (01) : 254 - 263