Intense pH Sensitivity Modulation in Carbon Nanotube-Based Field-Effect Transistor by Non-Covalent Polyfluorene Functionalization

被引:0
作者
Cho, Gookbin [1 ]
Grinenval, Eva [1 ]
Gabriel, Jean-Christophe P. [2 ]
Lebental, Berengere [3 ]
机构
[1] Ecole Polytech, Inst Polytech Paris, Lab Phys Interfaces & Couches Minces, LPICM,CNRS, F-91128 Palaiseau, France
[2] Univ Paris Saclay, LICSEN, NIMBE UMR CEA CNRS 3685, F-91191 Gif Sur Yvette, France
[3] Univ Gustave Eiffel, IMSE, COSYS, Marne la Vallee Campus, F-77447 Marne La Vallee, France
基金
欧盟地平线“2020”;
关键词
carbon nanotubes; field effect transistor; electrolyte gating; pH sensing; non covalent functionalization; polyfluorene; urea; pH buffer; RANDOM NETWORKS; LOW-COST; TRANSPARENT; HYSTERESIS; PERFORMANCE; PERCOLATION; MOLECULES;
D O I
10.3390/nano13071157
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We compare the pH sensing performance of non-functionalized carbon nanotubes (CNT) field-effect transistors (p-CNTFET) and CNTFET functionalized with a conjugated polyfluorene polymer (labeled FF-UR) bearing urea-based moieties (f-CNTFET). The devices are electrolyte-gated, PMMA-passivated, 5 gm-channel FETs with unsorted, inkjet-printed single-walled CNT. In phosphate (PBS) and borate (BBS) buffer solutions, the p-CNTFETs exhibit a p-type operation while f-CNTFETs exhibit p-type behavior in BBS and ambipolarity in PBS. The sensitivity to pH is evaluated by measuring the drain current at a gate and drain voltage of -0.8 V. In PBS, p-CNTFETs show a linear, reversible pH response between pH 3 and pH 9 with a sensitivity of 26 +/- 2.2%/pH unit; while f-CNTFETs have a much stronger, reversible pH response (373%/pH unit), but only over the range of pH 7 to pH 9. In BBS, both p-CNTFET and f-CNTFET show a linear pH response between pH 5 and 9, with sensitivities of 56%/pH and 96%/pH, respectively. Analysis of the I-V curves as a function of pH suggests that the increased pH sensitivity of f-CNTFET is consistent with interactions of FF-UR with phosphate ions in PBS and boric acid in BBS, with the ratio and charge of the complexed species depending on pH. The complexation affects the efficiency of electrolyte gating and the surface charge around the CNT, both of which modify the I-V response of the CNTFET, leading to the observed current sensitivity as a function of pH. The performances of p-CNTFET in PBS are comparable to the best results in the literature, while the performances of the f-CNTFET far exceed the current state-of-the-art by a factor of four in BBS and more than 10 over a limited range of pH in BBS. This is the first time that a functionalization other than carboxylate moieties has significantly improved the state-of-the-art of pH sensing with CNTFET or CNT chemistors. On the other hand, this study also highlights the challenge of transferring this performance to a real water matrix, where many different species may compete for interactions with FF-UR.
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页数:22
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共 52 条
  • [1] Review of pH sensing materials from macro- to nano-scale: Recent developments and examples of seawater applications
    Avolio, Roberto
    Grozdanov, Anita
    Avella, Maurizio
    Barton, John
    Cocca, Mariacristina
    De Falco, Francesca
    Dimitrov, Aleksandar T.
    Errico, Maria Emanuela
    Fanjul-Bolado, Pablo
    Gentile, Gennaro
    Paunovic, Perica
    Ribotti, Alberto
    Magni, Paolo
    [J]. CRITICAL REVIEWS IN ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2022, 52 (06) : 979 - 1021
  • [2] Prediction of the interaction strength of an urea-based probe toward ions in water by means of Density Functional Theory/Polarizable Continuum Model calculations
    Benda, Robert
    Vezin, Thomas
    Lebental, Berengere
    [J]. INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY, 2022, 122 (12)
  • [3] Insights into the π - π interaction driven non-covalent functionalization of carbon nanotubes of various diameters by conjugated fluorene and carbazole copolymers
    Benda, Robert
    Zucchi, Gael
    Cances, Eric
    Lebental, Berengere
    [J]. JOURNAL OF CHEMICAL PHYSICS, 2020, 152 (06)
  • [4] Influence of mobile ions on nanotube based FET devices
    Bradley, K
    Cumings, J
    Star, A
    Gabriel, JCP
    Grüner, G
    [J]. NANO LETTERS, 2003, 3 (05) : 639 - 641
  • [5] Short-channel effects in contact-passivated nanotube chemical sensors
    Bradley, K
    Gabriel, JCP
    Star, A
    Grüner, G
    [J]. APPLIED PHYSICS LETTERS, 2003, 83 (18) : 3821 - 3823
  • [6] Bradley K., 2005, U.S. Patent, Patent No. [6,894,359, 6894359]
  • [7] Random Networks and Aligned Arrays of Single-Walled Carbon Nanotubes for Electronic Device Applications
    Cao, Qing
    Rogers, John A.
    [J]. NANO RESEARCH, 2008, 1 (04) : 259 - 272
  • [8] Electrical and Electrochemical Sensors Based on Carbon Nanotubes for the Monitoring of Chemicals in Water-A Review
    Cho, Gookbin
    Azzouzi, Sawsen
    Zucchi, Gael
    Lebental, Berengere
    [J]. SENSORS, 2022, 22 (01)
  • [9] Dresselhaus M. S., 1996, Science of Fullerenes and Carbon Nanotubes
  • [10] Emery J.F., 1961, RADIOCHEMISTRY GOLD