Electrostatic Control of Artificial Cell Membrane Spreading by Tuning the Thickness of an Electric Double Layer in a Nanogap

被引:1
|
作者
Kashimura, Yoshiaki [1 ]
Furukawa, Kazuaki [1 ]
Torimitsu, Keiichi [1 ]
机构
[1] NTT Corp, NTT Basic Res Labs, Atsugi, Kanagawa 2430198, Japan
基金
日本学术振兴会;
关键词
lipid bilayer; self-spreading; nanogap electrodes; electric double layer; SUPPORTED LIPID-BILAYER;
D O I
10.1587/transele.E96.C.344
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
When we apply a voltage to a supported lipid bilayer self-spreading through a nanometer-scale gap (nanogap), the effects can be divided into two types. One is that there is no voltage-dependent change in the self-spreading behavior. Namely, the lipid bilayer passes through a nanogap without any stagnation. The other reveals that the self-spreading of a lipid bilayer can be controlled by an electric field modulation between nanogap electrodes. As a mechanism for these phenomena, we have proposed an electrostatic trapping model, in which the relationship between the thickness of an electric double layer and the nanogap spacing plays a crucial role. Here, to confirm the validity of this mechanism, we investigated the ionic concentration dependence of an electrolyte solution on the self-spreading behavior, which enabled us to tune the thickness of the electric double layer precisely. The result exhibited a certain threshold for controlling the self-spreading behavior. We also approximated the electric potential in the nanogap by using the Debye-Huckel equation. Our calculation result was in good agreement with the ionic concentration dependence experiments, suggesting the validity of our proposed mechanism. The results described in this work provide useful information regarding the realization of nanobio devices and the fundamental study of nanoelectronics.
引用
收藏
页码:344 / 347
页数:4
相关论文
共 50 条
  • [21] A microwave technique for online monitoring and control of dust layer thickness inside electrostatic precipitators
    Bramanti, M
    Mattachini, F
    Nardi, V
    Gagliardi, G
    JOURNAL OF MICROWAVE POWER AND ELECTROMAGNETIC ENERGY, 1999, 34 (02) : 67 - 72
  • [22] THE ANALYSIS OF THE STRUCTURE ELECTRIC DOUBLE-LAYER OF THE LIVING CELL
    GOLOVANOV, MV
    BIOFIZIKA, 1995, 40 (02): : 372 - 376
  • [23] CALCULATION OF THE MEAN ELECTROSTATIC POTENTIAL IN THE ELECTRIC DOUBLE-LAYER USING THE MEAN SPHERICAL APPROXIMATION
    OUTHWAITE, CW
    BHUIYAN, LB
    LEVINE, S
    CHEMICAL PHYSICS LETTERS, 1979, 64 (01) : 150 - 153
  • [24] Starting Electroosmosis in a Fibrous Porous Medium with Arbitrary Electric Double-Layer Thickness
    Chen, Wei Z.
    Keh, Huan J.
    CHEMISTRY-SWITZERLAND, 2025, 7 (01):
  • [25] Dipolophoresis of interacting conducting nano-particles of finite electric double layer thickness
    Miloh, Touvia
    PHYSICS OF FLUIDS, 2011, 23 (12)
  • [26] Estimation of the electric double layer thickness in the presence of two types of ions in soil water
    Mahanta, Kshirendra Kumar
    Mishra, Govinda Chandra
    Kansal, M. L.
    APPLIED CLAY SCIENCE, 2014, 87 : 212 - 218
  • [27] REGULATION OF PROTON TRANSPORT ACROSS THE DOUBLE ELECTRIC LAYER ON MITOCHONDRIAL-MEMBRANE
    DRAGUNOVA, SF
    KRASINSKAYA, IP
    YAGUZHINSKII, LS
    BIOCHEMISTRY-MOSCOW, 1981, 46 (06) : 880 - 887
  • [28] Control of Thickness and Composition of Pd/Ag Membrane during Layer-by-Layer Electroless Plating
    Zeng Gaofeng
    Shi Lei
    Xu Hengyong
    CHINESE JOURNAL OF CATALYSIS, 2009, 30 (12) : 1227 - 1232
  • [29] Electric double layer at the membrane/solution interface. Distribution of electric potential and estimation of the charge stored
    Manzanares, J.A.
    Mafe, S.
    Bisquert, J.
    Berichte der Bunsengesellschaft fuer Physikalische Chemie, 1992, 96 (04):
  • [30] Electric Field Tuning of Interlayer Coupling in Noncentrosymmetric 3R-MoS2 with an Electric Double Layer Interface
    Zhang, Xi
    Zhu, Tongshuai
    Huang, Junwei
    Wang, Qian
    Cong, Xin
    Bi, Xiangyu
    Tang, Ming
    Zhang, Caorong
    Zhou, Ling
    Zhang, Dongqin
    Su, Tong
    Dai, Xueting
    Meng, Kui
    Li, Zeya
    Qu, Caiyu
    Zhao, Wei-Wei
    Tan, Ping-Heng
    Zhang, Haijun
    Yuan, Hongtao
    ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (41) : 46900 - 46907