Three-Dimensional Carbon Interdigitated Electrode Arrays for Redox-Amplification

被引:54
|
作者
Kamath, Rahul R. [1 ]
Madou, Marc J. [1 ]
机构
[1] Univ Calif Irvine, Irvine, CA 92697 USA
关键词
ELECTROCHEMICAL DETECTION; MICROELECTRODES; FABRICATION; SIMULATION; IDA;
D O I
10.1021/ac4033356
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Three-dimensional (3D) carbon interdigitated electrode arrays (IDEAs) were fabricated using inexpensive, conventional, UV photolithography of SU-8 with modified exposure and post exposure bake settings followed by pyrolysis in an inert environment. The sensor performance was investigated as a function of both the IDEA digit width/gap ratio and digit height under flow and no flow conditions. We demonstrated a gradual increase in redox amplification with an increase in the IDEA digit width/gap ratio. The highest amplification of 37 was obtained for a width/gap ratio of 1.58 and for an electrode height of 1.1 mu m. Redox amplification also increases significantly with an increase in the IDEA height, from a factor of 9 at a 0.22 pm digit height to a factor of 37 at a 1.1 mu m height. The effect of potential sweep rates on redox amplification was also investigated. As the sweep rate was decreased from 50 mV/s to 5 mV/s, the collection efficiency increased from 0.92 to 0.97, whereas the amplification increased from 7 to 25. Under flow conditions, the amplification decreases substantially as the cycling of the redox species is impeded by convection, resulting in a drop in collection efficiency. The highest amplification of 37 dropped to 4 for the same electrode at a flow rate of 500 nL/s. Under flow, redox amplification increased with an increase in the IDEA height.
引用
收藏
页码:2963 / 2971
页数:9
相关论文
共 50 条
  • [21] Efficient Reduction of Carbon Tetrachloride in an Electrochemical Reactor with a Three-Dimensional Electrode
    Molina, Victor M.
    Moreno-Toral, Esteban
    Ramos-Carrillo, Antonio
    ENG, 2024, 5 (02): : 983 - 991
  • [22] Renewable three-dimensional Prussian blue modified carbon ceramic electrode
    Wang, P
    Yuan, Y
    Wang, XP
    Zhu, GY
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2000, 493 (1-2): : 130 - 134
  • [23] A three-dimensional carbon electrode derived from bean sprout for supercapacitors
    Zhou Yang
    Meng Xiang
    Zhonglian Wu
    Jia Hui
    Qianyu Huang
    Jie Zhang
    Hengfei Qin
    Ionics, 2020, 26 : 5705 - 5714
  • [24] Three-dimensional arrays in polymer nanocomposites
    Kumacheva, E
    Kalinina, O
    Lilge, L
    ADVANCED MATERIALS, 1999, 11 (03) : 231 - +
  • [25] Three-dimensional lithium-ion batteries with interdigitated electrodes
    Johnson, Derek C.
    Prieto, Amy L.
    ENERGY HARVESTING AND STORAGE: MATERIALS, DEVICES, AND APPLICATIONS IV, 2013, 8728
  • [26] Electrorotation chip consisting of three-dimensional interdigitated array electrodes
    Ino, Kosuke
    Ishida, Atsuko
    Inoue, Kumi Y.
    Suzuki, Masato
    Koide, Masahiro
    Yasukawa, Tomoyuki
    Shikua, Hitoshi
    Matsue, Tomokazu
    SENSORS AND ACTUATORS B-CHEMICAL, 2011, 153 (02) : 468 - 473
  • [27] Use of four-electrode arrays in three-dimensional electrical resistivity imaging survey
    Ahmad Neyamadpour
    W. A. T. Wan Abdullah
    Samsudin Taib
    Studia Geophysica et Geodaetica, 2010, 54 : 299 - 311
  • [28] Use of four-electrode arrays in three-dimensional electrical resistivity imaging survey
    Neyamadpour, Ahmad
    Abdullah, W. A. T. Wan
    Taib, Samsudin
    STUDIA GEOPHYSICA ET GEODAETICA, 2010, 54 (02) : 299 - 311
  • [29] Three-dimensional electrode arrays for retinal prostheses: modeling, geometry optimization and experimental validation
    Djilas, M.
    Oles, C.
    Lorach, H.
    Bendali, A.
    Degardin, J.
    Dubus, E.
    Lissorgues-Bazin, G.
    Rousseau, L.
    Benosman, R.
    Ieng, S-H
    Joucla, S.
    Yvert, B.
    Bergonzo, P.
    Sahel, J.
    Picaud, S.
    JOURNAL OF NEURAL ENGINEERING, 2011, 8 (04)
  • [30] The dynamics of three-dimensional extremely short pulses in carbon nanotubes with attenuation and amplification
    N. N. Konobeeva
    M. B. Belonenko
    Optics and Spectroscopy, 2017, 123 : 624 - 628