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http://dx.doi.org/10.5229/JECST.2019.10.2.185

Electrochemical Dopamine Sensors Based on Graphene  

Rahman, Md. Mahbubur (Department of Energy and Materials, Konkuk University)
Lee, Jae-Joon (Department of Energy Materials and Engineering, Research Center for Photoenergy Harvesting & Conversion Technology (phct), Dongguk University)
Publication Information
Journal of Electrochemical Science and Technology / v.10, no.2, 2019 , pp. 185-195 More about this Journal
Abstract
The large surface area and the high electrical conductivity of graphene (GP) allow it to act as an "electron wire" between the redox center of biomolecules and an electrode surface. The faster electron transfer kinetics and excellent catalytic activity of GP facilitate the accurate and selective electrochemical detection of biomolecules. This mini-review provides an overview of the recent developments and progress of GP, functionalized or doped GP, and GP-composites based sensors for the selective and interference-free detection of dopamine (DA). The electrochemical principles and future perspective and challenges of DA sensors were also discussed based on GP.
Keywords
Graphene; Electrochemical Sensors; Dopamine; Functionalized and Doped Graphene; Graphene-Composites;
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1 Y. Shao, J. Wang, H. Wu, J. Liu, I. A. Aksay, Y. Lin, Electroanalysis, 2010, 22(10), 1027-1036.   DOI
2 D. Li, M. M. Rahman, C. Ge, J. Kim, J.-J. Lee, New J. Chem., 2017, 41(24), 15458-15465.   DOI
3 X. Zhu, Q. Liu, X. Zhu, C. Li, M. Xu, Y. Liang, Int. J. Electrochem. Sci., 2012, 7, 5172-5184.
4 M. M. Rahman, A. Ahmed, J. J. Lee, J. Electrochem. Soc., 2018, 165(3), B89-B95.   DOI
5 M. M. Rahman, A. J. S. Ahammad, J.-H. Jin, S. J. Ahn, J.-J. Lee, Sensors, 2010, 10(5), 4855-4886.   DOI
6 M. M. Rahman, X.-B. Li, Y.-D. Jeon, H.-J. Lee, S. J. Lee, J.-J. Lee, J. Electrochem. Sci. Tech., 2012, 3(2), 90-94.   DOI
7 M. M. Rahman, Y. J. Kim, J. J. Lee, Bull. Korean. Chem. Soc., 2017, 38(1), 27-32.   DOI
8 H. R. Zare, N. Rajabzadeh, N. Nasirizadeh, M. M. Ardakani, J. Electroanal. Chem., 2006, 589(1), 60-69.   DOI
9 T. Selvaraju, R. Ramaraj, J. Appl. Electrochem., 2003, 33(8), 759-762.   DOI
10 X.-B. Li, M. M. Rahman, G.-X. Xu, J.-J. Lee, Electrochim. Acta, 2015, 173, 440-447.   DOI
11 A. Liu, M. Wei, I. Honma, H. Zhou, Adv. Funct. Mater., 2006, 16(3), 371-376.   DOI
12 S. R. Bae, H. Jeong, S. Jo, S. Jeon, Bull. Korean Chem. Soc., 2007, 28(12), 2363-2368.   DOI
13 A. J. S. Ahammad, J. J. Lee, M. A. Rahman, Sensors, 2009, 9(4), 2289-2319.   DOI
14 Y. Li, X. Lin, Sensor Actuat. B: Chem., 2006, 115(1), 134-139.   DOI
15 A. J. Downard, A. D. Roddick, A. M. Bond, Anal. Chim. Acta, 1995, 317(1-3), 303-310.   DOI
16 M. J. Giz, B. Duong, N. J. Tao, J. Electroanal. Chem., 1999, 465, 72-79.   DOI
17 J.-J. Feng, H. Guo, Y.-F. Li, Y.-H. Wang, W.-Y. Chen, A.-J. Wang, ACS Appl. Mater. Interfaces, 2013, 5(4), 1226-1231.   DOI
18 C. R. Raj, K. Tokuda, T. Ohsaka, Bioelectrochemistry, 2001, 53(2), 183-191.   DOI
19 S. A. Kumar, C.-F.Tang, S.-M.Chen, Talanta, 2008, 74(4), 860-866.   DOI
20 A. J. Saleh Ahammad, X.-B. Li, M. M. Rahman, K.-M. Noh, J.-J. Lee, Int. J. Electrochem. Sci., 2013, 8, 7806-7815.
21 E. S. Forzani, X. Li, N. Tao, Anal. Chem., 2007, 79(14), 5217-5224.   DOI
22 Y. Choi, J.-H. Choi, L. Liu, B.-K. Oh, S. Park, Chem. Mater., 2013, 25(6), 919-926.   DOI
23 L.C. Clark, Trans. Am. Soc. Artif. Intern. Organs, 1956, 2, 41-48
24 Y. J. Jang, J. H. Jun, K. M. K. Swamy, K. Nakamura, H. S. Koh, Y. J. Yoon, J. Yoon, Bull. Korean Chem. Soc., 2005, 26(12), 2041-2043.   DOI
25 R. N. Adams, Electrochemistry at Solid Electrodes, New York, Marcel Dekker, 1969.
26 A. Bard, L. R. Faulkner, Electrochemical Methods, New York, Wiley, 1980.
27 Y. Wang, H. Xu, J. Zhang, G. Li, Sensors, 2008, 8(4), 2043-2081.   DOI
28 S. M. U. Ali, U. Nur, M. Willander, B. Danielsson, IEEE Trans. Nanotechnol., 2009, 8(6), 678-683.   DOI
29 A. M. Othman, N. M. H. Rizka, M. S. El-Shahawi, Anal. Sci., 2004, 20(4), 651-655.   DOI
30 A. G. Crevillen, M. Pumera, M. C. Gonzalez, A. Escarpa, Analyst, 2009, 134(4), 657-662.   DOI
31 W. Yang, K. R. Ratinac, S. P. Ringer, P. Thordarson, J. J. Gooding, F. Braet, Angew. Chem. Int. Ed., 2010, 49(12), 2114-2138   DOI
32 A.G. Guell, A. S. Cuharuc, Y.-R. Kim, G. Zhang, S.-Y. Tan, N. Ebejer, P. R. Unwin, ACS Nano, 2015, 9(4), 3558-3571.   DOI
33 Y.-R. Kim, S. Bong, Y.-J. Kang, Y. Yang, R. K. Mahajan, J. S. Kim, H. Kim, Biosens. Bioelectron., 2010, 25(10), 2366-2369.   DOI
34 N. G. Shang, P. Papakonstantinou, M. McMullan, M. Chu, A. Stamboulis, A. Potenza, S. S. Dhesi, H. Marchetto, Adv. Funct. Mater., 2008, 18(21), 3506-3514.   DOI
35 X. Xiao, P. R. Miller, R. J. Narayan, S. M. Brozik, D. R. Wheeler, I. Brener, J. Wang, D. B. Burckel, R. Polsky, Electroanalysis, 2014, 26(1), 52-56.   DOI
36 M. Bagherzadeh, M. Heydari, Analyst, 2013, 138(20), 6044-6051.   DOI
37 S. Alwarappan, A. Erdem, C. Liu, C.-Z. Li, J. Phys. Chem. C, 2009, 113(20), 8853-8857.   DOI
38 J. Ping, J. Wu, Y. Wang, Y. Ying, Biosens. Bioelectron., 2012, 34(1), 70-76.   DOI
39 F. Gao, X. Cai, X. Wang, C. Gao, S. Liu, F. Gao, Q. Wang, Sensor Actuat. B: Chem., 2013, 186, 380-387.   DOI
40 M. Mallesha, R. Manjunatha, C. Nethravathi, G. S. Suresh, M. Rajamathi, J. S. Melo, T. V. Venkatesha, Bioelectrochemistry, 2011, 81(2), 104-108.   DOI
41 Y. Bao, J. Song, Y. Mao, D. Han, F. Yang, L. Niu, A. Ivaska, Electroanalysis, 2011, 23(4), 878-884.   DOI
42 L. Wu, L. Feng, J. Ren, X. Qu, Biosens. Bioelectron., 2012, 34(1), 57-62.   DOI
43 S. Hou, M. L. Kasner, S. Su, K. Patel, R. Cuellari, J. Phys. Chem. C, 2010, 114(35), 14915-14921.   DOI
44 S.-J. Li, J.-Z. He, M.-J. Zhang, R.-X. Zhang, X.-Lei Lv, S.-H. Li, H. Pang, Electrochim. Acta, 2013, 102, 58-65.   DOI
45 Y. Wang, W. Peng, L. Liu, M. Tang, F. Gao, M. Li, Microchim. Acta, 2011, 174(1-2), 41-46.   DOI
46 F. Valentini, D. Romanazzo, M. Carbone, G. Palleschi, Electroanalysis, 2012, 24(4), 872-881.   DOI
47 M. Zhu, C. Zeng, J. Ye, Electroanalysis, 2011, 23(4), 907-914.   DOI
48 N. Li, E. Zheng, X. Chen, S. Sun, C. You, Y. Ruan, X. Weng, Int. J. Electrochem. Sci., 2013, 8, 6524-6534.
49 Z.-H. Sheng, X.-Q. Zheng, J.-Y. Xu, W.-J. Bao, F.-B. Wang, X.-H. Xia, Biosens. Bioelectron., 2012, 34(1), 125-131.   DOI
50 S. M. Tan, H. L. Poh, Z. Sofer, M. Pumera, Analyst, 2013, 138(17), 4885-4891.   DOI
51 M. Li, C. Liu, H. Zhao, H. An, H. Cao, Y. Zhang, Z. Fan, Carbon, 2015, 86, 197-206.   DOI
52 M. M. Rahman, N. S. Lopa, M. J. Ju, J.-J. Lee, J. Electroanal. Chem., 2017, 792, 54-60.   DOI
53 W. Zhu, T. Chen, X. Ma, H. Ma, S. Chen, Colloids Surf. B: Biointerfaces, 2013, 111, 321-326.   DOI
54 J. Yan, S. Liu, Z. Zhang, G. He, P. Zhou, H. Liang, L. Tian, X. Zhou, H. Jiang, Colloids Surf. B: Biointerfaces, 2013, 111, 392-397.   DOI
55 J. Du, R. Yue, F. Ren, Z. Yao, F. Jiang, P. Yang, Y. Du, Gold Bull., 2013, 46(3), 137-144.   DOI
56 X. Tian, C. Cheng, H. Yuan, J. Du, D. Xiaoa, S. Xie, M. M. F. Choi, Talanta, 2012, 93, 79-85.   DOI
57 C.-L. Sun, H.-H. Lee, J.-M. Yang, C.-C. Wu, Biosens. Bioelectron., 2011, 26(8), 3450-3455.   DOI
58 S.-J. Li, D.-H. Deng, Q. Shi, S.-R. Liu, Microchim. Acta, 2012, 177(3-4), 325-331.   DOI
59 K. Chu, F. Wang, X.-L. Zhao, X.-W. Wang, Y. Tian, Mater. Sci. Eng. C, 2017, 81, 452-458.   DOI
60 D. Liu, M. M. Rahman, C. Ge, J. Kim, J.-J. Lee, New J. Chem., 2017, 41(24), 15458-15465.   DOI
61 Q. Liu, X. Zhu, Z. Huo, X. He, Y. Liang, M. Xu, Talanta, 2012, 97, 557-562.   DOI
62 P. Si, H. Chen, P. Kannan, D.-H. Kim, Analyst, 2011, 136(24), 5134-5138.   DOI
63 C. Ge, M. M. Rahman, N. C. D. Nath, M. J. Ju, K.-M. Noh, J.-J. Lee, Bull. Korean Chem. Soc., 2015, 36(3), 762-771.   DOI
64 A.K. Geim, K.S. Novoselov, Nat. Mater., 2007, 6, 183-191.   DOI
65 D. Li, R. B. Kaner, Science, 2008, 320, 1170-1171.   DOI
66 Q. B. Bui, D. M. Nguyen, T. M. L. Nguyen, L. K. Kwac, H. G. Kim, S. C. Ko, H. Jeong, J. Electrochem. Sci. Technol., 2018, 9(3), 229-237.   DOI
67 F. D. Parmentier, T. Cazimajou, Y. Sekine, H. Hibino, H. Irie, D. C. Glattli, N. Kumada, P. Roulleau, Sci. Rep., 2016, 6, 38393.   DOI
68 B. Terres, L. A. Chizhova, F. Libisch, J. Peiro, D. Jorger, S. Engels, A. Girschik, K. Watanabe, T. Taniguchi, S. V. Rotkin, J. Burgdorfer, C. Stampfer, Nat. Commun., 2016, 7, 11528.   DOI
69 Y. J. Yun, J. Ju, J. H. Lee, S.-H. Moon, S.-J. Park, Y. H. Kim, W. G. Hong, D. H. Ha, H. Jang, G. H. Lee, H.-M. Chung, J. Choi, S. W. Nam, S.-H. Lee, Y. Jun, Adv. Funct. Mater., 2017, 27(33), 1701513.   DOI
70 D. Han, T. Han, C. Shan, A. Ivaska, L. Niu, Electroanalysis, 2010, 22(17-18), 2001-2008.   DOI
71 W. Sun, X. Wang, Y. Wang, X. Ju, L. Xu, G. Li, Z. Sun, Electrochim. Acta, 2013, 87, 317-322.   DOI
72 L. Tan, K.-G. Zhou, Y.-H. Zhang, H.-X. Wang, X.-D. Wang, Y.-F. Guo, H.-L. Zhang, Electrochem. Commun., 2010, 12(4), 557-560.   DOI
73 P. He, W. Wang, L. Du, F. Dong, Y. Deng, T. Zhang, Anal. Chim. Acta, 2012, 739, 25-30.   DOI
74 Z. Wang, J. Xia, L. Zhu, X. Chen, F. Zhang, S. Yao, Y. Li, Y. Xia, Electroanalysis, 2011, 23(10), 2463-2471.   DOI
75 M. Raj, P. Gupta, R. N. Goyal, Y.-B. Shim, Sensor Actuat. B: Chem., 2017, 239, 993-1002.   DOI
76 J. C. Kim, M. M. Rahman, M. J. Ju, J.-J. Lee, RSC Adv., 2018, 8(34), 19058-19066.   DOI
77 J. Yoo, Y. Kim, C.-W. Lee, H. Yoon, S. Yoo, H. Jeong, J. Electrochem. Sci. Technol., 2017, 8(3), 250-256.   DOI
78 N. Mahmood, C. Zhang, H. Yin, Y. Hou, J. Mater. Chem. A, 2014, 2(1), 15-32.   DOI
79 M. Liu, R. Zhang, W. Chen, Chem. Rev., 2014, 114(10), 5117-5160.   DOI