-
1
-
-
56149113622
-
Graphene based ultracapacitors
-
[1] Stoller, M.D., Park, S., Zhu, Y., An, J., Ruoff, R.S., Graphene based ultracapacitors. Nano Lett. 8 (2008), 3498–3502.
-
(2008)
Nano Lett.
, vol.8
, pp. 3498-3502
-
-
Stoller, M.D.1
Park, S.2
Zhu, Y.3
An, J.4
Ruoff, R.S.5
-
3
-
-
42349087225
-
Superior thermal conductivity of single-layer graphene
-
[3] Balandin, A.A., Ghosh, S., Bao, W., Calizo, I., Teweldebrhan, D., Miao, F., Lau, C.N., Superior thermal conductivity of single-layer graphene. Nano Lett. 8 (2008), 902–907.
-
(2008)
Nano Lett.
, vol.8
, pp. 902-907
-
-
Balandin, A.A.1
Ghosh, S.2
Bao, W.3
Calizo, I.4
Teweldebrhan, D.5
Miao, F.6
Lau, C.N.7
-
4
-
-
49449091072
-
Approaching ballistic transport in suspended graphene
-
[4] Du, X., Skachko, I., Barker, A., Andrei, E.Y., Approaching ballistic transport in suspended graphene. Nat. Nanotechnol. 3 (2008), 491–495.
-
(2008)
Nat. Nanotechnol.
, vol.3
, pp. 491-495
-
-
Du, X.1
Skachko, I.2
Barker, A.3
Andrei, E.Y.4
-
5
-
-
45349092986
-
Fine structure constant defines visual transparency of graphene
-
[5] Nair, R.R., Blake, P., Geim, A.N., Fine structure constant defines visual transparency of graphene. Science, 320, 2008, 1308.
-
(2008)
Science
, vol.320
, pp. 1308
-
-
Nair, R.R.1
Blake, P.2
Geim, A.N.3
-
6
-
-
84862792221
-
Pulse electrodeposited Pd nanoclusters on graphene based electrodes for proton exchange membrane fuel cells
-
[6] Hsieh, C., Liu, Y., Roy, A.K., Pulse electrodeposited Pd nanoclusters on graphene based electrodes for proton exchange membrane fuel cells. Electrochim. Acta 64 (2012), 205–210.
-
(2012)
Electrochim. Acta
, vol.64
, pp. 205-210
-
-
Hsieh, C.1
Liu, Y.2
Roy, A.K.3
-
7
-
-
84875506161
-
Simultaneous determination of uric acid, xanthine, hypoxanthine and caffeine in human blood serum and urine samples using electrochemically reduced graphene oxide modified electrode
-
[7] Raj, M.A., John, S.A., Simultaneous determination of uric acid, xanthine, hypoxanthine and caffeine in human blood serum and urine samples using electrochemically reduced graphene oxide modified electrode. Anal. Chem. Acta 771 (2013), 14–20.
-
(2013)
Anal. Chem. Acta
, vol.771
, pp. 14-20
-
-
Raj, M.A.1
John, S.A.2
-
8
-
-
84882612891
-
Graphene supported Au-Pd bimetallic nanoparticles with excellent catalytic performance in selective oxidation of methanol to methyl formate
-
[8] Wang, R., Wu, Z., Chen, C., Qin, Z., Zhu, H., Wang, G., Wang, H., Wu, C., Dong, W., Fan, W., Wang, J., Graphene supported Au-Pd bimetallic nanoparticles with excellent catalytic performance in selective oxidation of methanol to methyl formate. Chem. Commun. 49 (2013), 8250–8252.
-
(2013)
Chem. Commun.
, vol.49
, pp. 8250-8252
-
-
Wang, R.1
Wu, Z.2
Chen, C.3
Qin, Z.4
Zhu, H.5
Wang, G.6
Wang, H.7
Wu, C.8
Dong, W.9
Fan, W.10
Wang, J.11
-
9
-
-
77955231284
-
Graphene transistors
-
[9] Schwierz, F., Graphene transistors. Nat. Nanotechnol. 5 (2010), 487–496.
-
(2010)
Nat. Nanotechnol.
, vol.5
, pp. 487-496
-
-
Schwierz, F.1
-
10
-
-
84888990302
-
Chemical reduction of graphene oxide: a synthetic chemistry view point
-
[10] Chua, C.K., Pumera, M., Chemical reduction of graphene oxide: a synthetic chemistry view point. Chem. Soc. Rev 43 (2014), 291–312.
-
(2014)
Chem. Soc. Rev
, vol.43
, pp. 291-312
-
-
Chua, C.K.1
Pumera, M.2
-
11
-
-
53549119409
-
Facile synthesis and characterization of graphene nanosheets
-
[11] Wang, G.X., Yang, J., Park, J., Guo, X.L., Wang, B., Liu, H., Yao, J., Facile synthesis and characterization of graphene nanosheets. J. Phys. Chem. C 112 (2008), 8192–8195.
-
(2008)
J. Phys. Chem. C
, vol.112
, pp. 8192-8195
-
-
Wang, G.X.1
Yang, J.2
Park, J.3
Guo, X.L.4
Wang, B.5
Liu, H.6
Yao, J.7
-
12
-
-
75449104301
-
Hydrazine and thermal reduction of graphene oxide: reaction mechanisms, product structures and reaction design
-
[12] Gao, X., Jang, J., Nagase, J.S., Hydrazine and thermal reduction of graphene oxide: reaction mechanisms, product structures and reaction design. J. Phys. Chem. C 114 (2010), 832–842.
-
(2010)
J. Phys. Chem. C
, vol.114
, pp. 832-842
-
-
Gao, X.1
Jang, J.2
Nagase, J.S.3
-
13
-
-
49249131809
-
2-graphene nanocomposites. UV-assisted photocatalytic reduction of graphene oxide
-
2-graphene nanocomposites. UV-assisted photocatalytic reduction of graphene oxide. ACS Nano 2 (2008), 1487–1491.
-
(2008)
ACS Nano
, vol.2
, pp. 1487-1491
-
-
Williams, G.1
Seger, B.2
Kamat, P.V.3
-
14
-
-
84885014385
-
Nondestructive and rapid evaluation of chemical vapour deposition graphene by dark field optical microscopy
-
[14] Kong, X.H., Ji, H.X., Piner, R.D., Li, H.F., Magnuson, C.W., Tan, C., Ismach, A., Chou, H., Ruoff, R.S., Nondestructive and rapid evaluation of chemical vapour deposition graphene by dark field optical microscopy. Appl. Phys. Lett., 103, 2009, 043119.
-
(2009)
Appl. Phys. Lett.
, vol.103
, pp. 043119
-
-
Kong, X.H.1
Ji, H.X.2
Piner, R.D.3
Li, H.F.4
Magnuson, C.W.5
Tan, C.6
Ismach, A.7
Chou, H.8
Ruoff, R.S.9
-
15
-
-
33746344730
-
Graphene based composite materials
-
[15] Stankovich, S., Dikin, D.A., Dommett, G.H.B., Kohkhass, K.M., Zimney, E.J., Stach, E.A., Piner, R.D., Nguyen, S.T., Ruoff, R.S., Graphene based composite materials. Nature 442 (2006), 281–282.
-
(2006)
Nature
, vol.442
, pp. 281-282
-
-
Stankovich, S.1
Dikin, D.A.2
Dommett, G.H.B.3
Kohkhass, K.M.4
Zimney, E.J.5
Stach, E.A.6
Piner, R.D.7
Nguyen, S.T.8
Ruoff, R.S.9
-
16
-
-
67649198223
-
Efficient reduction of graphite oxide by sodium borohydride and its effect on electrical conductance
-
[16] Shin, H.J., Kim, K.K., Benayad, A., Yoon, S.M., Park, H.K., Jung, I., Jin, M.H., Jeong, H., Kim, J.M., Choi, J., Lee, Y.H., Efficient reduction of graphite oxide by sodium borohydride and its effect on electrical conductance. Adv. Funct. Mater. 19 (2009), 1987–1992.
-
(2009)
Adv. Funct. Mater.
, vol.19
, pp. 1987-1992
-
-
Shin, H.J.1
Kim, K.K.2
Benayad, A.3
Yoon, S.M.4
Park, H.K.5
Jung, I.6
Jin, M.H.7
Jeong, H.8
Kim, J.M.9
Choi, J.10
Lee, Y.H.11
-
17
-
-
70349557676
-
A green approach to the synthesis of graphene nanosheets
-
[17] Guo, H.L., Wang, X.F., Qian, Q.Y., Wang, F.B., Xia, X.H., A green approach to the synthesis of graphene nanosheets. ACS Nano 3 (2009), 2653–2659.
-
(2009)
ACS Nano
, vol.3
, pp. 2653-2659
-
-
Guo, H.L.1
Wang, X.F.2
Qian, Q.Y.3
Wang, F.B.4
Xia, X.H.5
-
18
-
-
78650386874
-
Environmentally friendly approaches toward the mass production of process able graphene from graphite oxide
-
[18] Paredes, J.I., Rodil, S.V., Merino, M.J.F., Guardia, L., Alonso, A.M., Tascon, J.M.D., Environmentally friendly approaches toward the mass production of process able graphene from graphite oxide. J. Mater. Chem. 21 (2010), 298–306.
-
(2010)
J. Mater. Chem.
, vol.21
, pp. 298-306
-
-
Paredes, J.I.1
Rodil, S.V.2
Merino, M.J.F.3
Guardia, L.4
Alonso, A.M.5
Tascon, J.M.D.6
-
19
-
-
77949572002
-
Facile and controllable electro chemical reduction of graphene oxide and its applications
-
[19] Shao, Y., Wang, J., Engelhard, M., Wang, C., Lin, Y., Facile and controllable electro chemical reduction of graphene oxide and its applications. J. Mater. Chem. 20 (2010), 743–748.
-
(2010)
J. Mater. Chem.
, vol.20
, pp. 743-748
-
-
Shao, Y.1
Wang, J.2
Engelhard, M.3
Wang, C.4
Lin, Y.5
-
20
-
-
77957670391
-
Aryne cycloaddition: highly efficient chemical modification of graphene
-
[20] Zhong, X., Jin, J., Li, S., Niu, Z., Hu, W., Li, R., Ma, J., Aryne cycloaddition: highly efficient chemical modification of graphene. Chem. Commun. 46 (2010), 7340–7342.
-
(2010)
Chem. Commun.
, vol.46
, pp. 7340-7342
-
-
Zhong, X.1
Jin, J.2
Li, S.3
Niu, Z.4
Hu, W.5
Li, R.6
Ma, J.7
-
21
-
-
80052372757
-
Direct electrochemical reduction of graphene oxide on ionic liquid doped screen-printed electrode and its electrochemical biosensing application
-
[21] Ping, J., Wang, Y., Fan, K., Wu, J., Ying, Y., Direct electrochemical reduction of graphene oxide on ionic liquid doped screen-printed electrode and its electrochemical biosensing application. Biosens. Bioelectron. 28 (2011), 204–209.
-
(2011)
Biosens. Bioelectron.
, vol.28
, pp. 204-209
-
-
Ping, J.1
Wang, Y.2
Fan, K.3
Wu, J.4
Ying, Y.5
-
22
-
-
79551569576
-
Direct electrodeposition of reduced graphene oxide on glassy carbon electrode and its electrochemical application
-
[22] Chen, L., Tang, Y., Wang, K., Liu, C., Luo, S., Direct electrodeposition of reduced graphene oxide on glassy carbon electrode and its electrochemical application. Electrochem. Commun 13 (2011), 133–137.
-
(2011)
Electrochem. Commun
, vol.13
, pp. 133-137
-
-
Chen, L.1
Tang, Y.2
Wang, K.3
Liu, C.4
Luo, S.5
-
23
-
-
77957924933
-
Immobilization-free direct electrochemical detection for DNA specific sequences based on electrochemically converted gold nanoparticles/graphene composite film
-
[23] Du, M., Yang, T., Jiao, K., Immobilization-free direct electrochemical detection for DNA specific sequences based on electrochemically converted gold nanoparticles/graphene composite film. J. Mater. Chem. 20 (2010), 9253–9260.
-
(2010)
J. Mater. Chem.
, vol.20
, pp. 9253-9260
-
-
Du, M.1
Yang, T.2
Jiao, K.3
-
24
-
-
12844264703
-
Biocatalytic growth of Au nanoparticles: from mechanistic aspects to biosensors design
-
[24] Zayats, M., Popov, I., Willner, I., Biocatalytic growth of Au nanoparticles: from mechanistic aspects to biosensors design. Nano Lett. 5 (2005), 21–25.
-
(2005)
Nano Lett.
, vol.5
, pp. 21-25
-
-
Zayats, M.1
Popov, I.2
Willner, I.3
-
25
-
-
0035937771
-
2 by catalase inhibits the proliferation of HER-2/Neu-transformed rat-1 fibroblasts through the induction of a stress response
-
2 by catalase inhibits the proliferation of HER-2/Neu-transformed rat-1 fibroblasts through the induction of a stress response. J. Biol. Chem. 276 (2001), 9558–9564.
-
(2001)
J. Biol. Chem.
, vol.276
, pp. 9558-9564
-
-
Preston, T.J.1
Muller, W.J.2
Singh, G.J.3
-
26
-
-
17044417696
-
Hydrogen peroxide generated extracellularly by receptor ligand interaction facilitates cell signalling
-
[26] Yulia, G.J.D., Carcamo, J.M., Ojeda, O.B., Shelton, C.C., Golde, D.W., Hydrogen peroxide generated extracellularly by receptor ligand interaction facilitates cell signalling. PNAS 102 (2005), 5044–5049.
-
(2005)
PNAS
, vol.102
, pp. 5044-5049
-
-
Yulia, G.J.D.1
Carcamo, J.M.2
Ojeda, O.B.3
Shelton, C.C.4
Golde, D.W.5
-
27
-
-
82555181619
-
Recent advances in electrochemical sensing for hydrogen peroxide: a review
-
[27] Chen, W., Cai, S., Ren, Q.Q., Wen, W., Zhao, Y.D., Recent advances in electrochemical sensing for hydrogen peroxide: a review. Analyst 137 (2012), 49–58.
-
(2012)
Analyst
, vol.137
, pp. 49-58
-
-
Chen, W.1
Cai, S.2
Ren, Q.Q.3
Wen, W.4
Zhao, Y.D.5
-
29
-
-
84957083739
-
Recent advances in graphene-based nanomaterials for fabricating electrochemical hydrogen peroxide sensors
-
(In press)
-
[29] Zhang, R., Chen, W., Recent advances in graphene-based nanomaterials for fabricating electrochemical hydrogen peroxide sensors. Biosens. Bioelectron, 2016, 10.1016/j.bios.2016.01.080 (In press).
-
(2016)
Biosens. Bioelectron
-
-
Zhang, R.1
Chen, W.2
-
32
-
-
33846828295
-
Direct electrochemical response of myoglobin using a room temperature ionic liquid, 1-(2-hydroxyethyl)-3-methyl imidazolium tetrafluoroborate as supporting electrolyte
-
[32] Ding, S.F., Wei, W., Zhao, G.C., Direct electrochemical response of myoglobin using a room temperature ionic liquid, 1-(2-hydroxyethyl)-3-methyl imidazolium tetrafluoroborate as supporting electrolyte. Electrochem. Commun. 9 (2007), 216–220.
-
(2007)
Electrochem. Commun.
, vol.9
, pp. 216-220
-
-
Ding, S.F.1
Wei, W.2
Zhao, G.C.3
-
33
-
-
0031061883
-
Films of hemoglobin and didodecyldimethyl ammonium bromide with enhanced electron transfer rates
-
[33] Lu, Z., Huang, Q., Rusling, J.F., Films of hemoglobin and didodecyldimethyl ammonium bromide with enhanced electron transfer rates. J. Electroanal. Chem. 423 (1997), 59–66.
-
(1997)
J. Electroanal. Chem.
, vol.423
, pp. 59-66
-
-
Lu, Z.1
Huang, Q.2
Rusling, J.F.3
-
35
-
-
67651224881
-
Solvothermal reduction of chemically exfoliated graphene sheets
-
[35] Wang, H.L., Robinson, J.T., Li, X.L., Dai, H.J., Solvothermal reduction of chemically exfoliated graphene sheets. J. Am. Chem. Soc. 131 (2009), 9910–9911.
-
(2009)
J. Am. Chem. Soc.
, vol.131
, pp. 9910-9911
-
-
Wang, H.L.1
Robinson, J.T.2
Li, X.L.3
Dai, H.J.4
-
36
-
-
68749109957
-
Direct electrochemical reduction of single layer graphene oxide and subsequent functionalization with glucose oxidase
-
[36] Wang, Z.J., Zhou, X.Z., Zhang, J., Boey, F., Zhang, H., Direct electrochemical reduction of single layer graphene oxide and subsequent functionalization with glucose oxidase. J. Phys. Chem. C 113 (2009), 14071–14075.
-
(2009)
J. Phys. Chem. C
, vol.113
, pp. 14071-14075
-
-
Wang, Z.J.1
Zhou, X.Z.2
Zhang, J.3
Boey, F.4
Zhang, H.5
-
37
-
-
61749097583
-
High yield preparation of macroscopic graphene oxide membranes
-
[37] Luo, Z., Lu, Y., Somers, L.A., Johnson, A.T.C., High yield preparation of macroscopic graphene oxide membranes. J. Am. Chem. Soc. 131 (2009), 898–899.
-
(2009)
J. Am. Chem. Soc.
, vol.131
, pp. 898-899
-
-
Luo, Z.1
Lu, Y.2
Somers, L.A.3
Johnson, A.T.C.4
-
38
-
-
77951704609
-
Reducing sugar: new functional molecules for the green synthesis of graphene nanosheets
-
[38] Zhu, C.Z., Guo, S.J., Fang, Y.X., Dong, S.J., Reducing sugar: new functional molecules for the green synthesis of graphene nanosheets. ACS Nano 4 (2010), 2429–2437.
-
(2010)
ACS Nano
, vol.4
, pp. 2429-2437
-
-
Zhu, C.Z.1
Guo, S.J.2
Fang, Y.X.3
Dong, S.J.4
-
39
-
-
79951877654
-
Chemical functionalization of graphene sheets by solvothermal reduction of a graphene oxide suspension in N-methyl-2-pyrrolidone
-
[39] Pham, V.H., Cuong, T.V., Hur, S.H., Oh, E., Kim, E.J., Shin, E.W., Chung, J.S., Chemical functionalization of graphene sheets by solvothermal reduction of a graphene oxide suspension in N-methyl-2-pyrrolidone. J. Mater. Chem. 21 (2011), 3371–3377.
-
(2011)
J. Mater. Chem.
, vol.21
, pp. 3371-3377
-
-
Pham, V.H.1
Cuong, T.V.2
Hur, S.H.3
Oh, E.4
Kim, E.J.5
Shin, E.W.6
Chung, J.S.7
-
40
-
-
33750459007
-
Raman spectrum of graphene and graphene layers
-
[40] Ferrari, A.C., Meyer, J.C., Scardaci, V., Casiraghi, C., Lazzeri, M., Mauri, F., Piscanec, S., Jiang, D., Novoselov, K.S., Roth, S., Geim, A.K., Raman spectrum of graphene and graphene layers. Phys. Rev. Lett., 97, 2006, 187401.
-
(2006)
Phys. Rev. Lett.
, vol.97
, pp. 187401
-
-
Ferrari, A.C.1
Meyer, J.C.2
Scardaci, V.3
Casiraghi, C.4
Lazzeri, M.5
Mauri, F.6
Piscanec, S.7
Jiang, D.8
Novoselov, K.S.9
Roth, S.10
Geim, A.K.11
-
41
-
-
77950817987
-
Environment friendly method to produce graphene that employs vitamin C and amino acid
-
[41] Gao, J., Liu, F., Liu, Y., Ma, N., Wang, Z., Zhang, X., Environment friendly method to produce graphene that employs vitamin C and amino acid. Chem. Mater. 22 (2010), 2213–2218.
-
(2010)
Chem. Mater.
, vol.22
, pp. 2213-2218
-
-
Gao, J.1
Liu, F.2
Liu, Y.3
Ma, N.4
Wang, Z.5
Zhang, X.6
-
42
-
-
34249742469
-
Synthesis of graphene based nanosheets via chemical reduction of exfoliated graphite oxide
-
[42] Stankovich, S., Dikin, D.A., Piner, R.D., Kohlhaas, K.A., Kleinhammes, A., Jia, Y., Wu, Y., Nguyen, S.T., Ruoff, R.S., Synthesis of graphene based nanosheets via chemical reduction of exfoliated graphite oxide. Carbon 45 (2007), 1558–1565.
-
(2007)
Carbon
, vol.45
, pp. 1558-1565
-
-
Stankovich, S.1
Dikin, D.A.2
Piner, R.D.3
Kohlhaas, K.A.4
Kleinhammes, A.5
Jia, Y.6
Wu, Y.7
Nguyen, S.T.8
Ruoff, R.S.9
-
43
-
-
33947263695
-
Studying disorder in graphene based systems by Raman spectroscopy
-
[43] Pimenta, M.A., Dresselhaus, G., Dresselhaus, M.S., Cancado, L.G., Jorio, A., Saito, R., Studying disorder in graphene based systems by Raman spectroscopy. Phys. Chem. Chem. Phys. 9 (2007), 1276–1291.
-
(2007)
Phys. Chem. Chem. Phys.
, vol.9
, pp. 1276-1291
-
-
Pimenta, M.A.1
Dresselhaus, G.2
Dresselhaus, M.S.3
Cancado, L.G.4
Jorio, A.5
Saito, R.6
-
44
-
-
61349108753
-
Polymer membrane stabilized gold nanostructures modified electrode and its application in nitric oxide detection
-
[44] Thangavel, S., Ramaraj, R., Polymer membrane stabilized gold nanostructures modified electrode and its application in nitric oxide detection. J. Phys. Chem. C 112 (2008), 19825–19830.
-
(2008)
J. Phys. Chem. C
, vol.112
, pp. 19825-19830
-
-
Thangavel, S.1
Ramaraj, R.2
-
45
-
-
84904973455
-
Tuning the reduction extent of electrochemically reduced graphene oxide electrode film to enhance its detection limit for voltammetric analysis
-
[45] Zhang, Z., Yan, J., Jin, H., Jin, J., Tuning the reduction extent of electrochemically reduced graphene oxide electrode film to enhance its detection limit for voltammetric analysis. Electrochim. Acta 139 (2014), 232–237.
-
(2014)
Electrochim. Acta
, vol.139
, pp. 232-237
-
-
Zhang, Z.1
Yan, J.2
Jin, H.3
Jin, J.4
-
46
-
-
78649339831
-
Exploring the physicoelectrochemical properties of graphene
-
[46] Kampouris, D.K., Banks, C.E., Exploring the physicoelectrochemical properties of graphene. Chem. Commun. 46 (2010), 8986–8988.
-
(2010)
Chem. Commun.
, vol.46
, pp. 8986-8988
-
-
Kampouris, D.K.1
Banks, C.E.2
-
47
-
-
46649104721
-
Potential application of single layered graphene sheet as strain sensor
-
[47] Pour, A.S., Ahmadian, M.T., Vafai, A., Potential application of single layered graphene sheet as strain sensor. Solid State Commun. 147 (2008), 336–340.
-
(2008)
Solid State Commun.
, vol.147
, pp. 336-340
-
-
Pour, A.S.1
Ahmadian, M.T.2
Vafai, A.3
-
48
-
-
77953295630
-
Graphene based electrochemical sensors and biosensors: a review
-
[48] Shao, Y., Wang, J., Wu, H., Liu, J., Aksay, I.A., Lin, Y., Graphene based electrochemical sensors and biosensors: a review. Electroanalysis 22 (2010), 1027–1036.
-
(2010)
Electroanalysis
, vol.22
, pp. 1027-1036
-
-
Shao, Y.1
Wang, J.2
Wu, H.3
Liu, J.4
Aksay, I.A.5
Lin, Y.6
-
50
-
-
47649105290
-
Cyclic voltammetry on electrode surfaces covered with porous layers: an analysis of electron transfer kinetics at single walled carbon nanotubes modified electrodes
-
[50] Streeter, I., Wildgoose, G.C., Shao, L., Compton, R.G., Cyclic voltammetry on electrode surfaces covered with porous layers: an analysis of electron transfer kinetics at single walled carbon nanotubes modified electrodes. Sensors Actuators B Chem. 133 (2008), 462–466.
-
(2008)
Sensors Actuators B Chem.
, vol.133
, pp. 462-466
-
-
Streeter, I.1
Wildgoose, G.C.2
Shao, L.3
Compton, R.G.4
-
51
-
-
34548542141
-
Use of high-purity metal catalyst free multiwalled carbon nanotubes to avoid potential experimental misinterpretations
-
[51] Jones, C.P., Jurkschat, K., Crossley, A., Compton, R.G., Riehl, B.L., Banks, C.E., Use of high-purity metal catalyst free multiwalled carbon nanotubes to avoid potential experimental misinterpretations. Langmuir 23 (2007), 9501–9504.
-
(2007)
Langmuir
, vol.23
, pp. 9501-9504
-
-
Jones, C.P.1
Jurkschat, K.2
Crossley, A.3
Compton, R.G.4
Riehl, B.L.5
Banks, C.E.6
-
52
-
-
84921986195
-
Preparation of graphene nanoflakes and its application for detection of hydrazine
-
[52] Mutyala, S., Mathiyarasu, J., Preparation of graphene nanoflakes and its application for detection of hydrazine. Sensors Actuators B Chem. 210 (2015), 692–699.
-
(2015)
Sensors Actuators B Chem.
, vol.210
, pp. 692-699
-
-
Mutyala, S.1
Mathiyarasu, J.2
-
53
-
-
84881131453
-
Ultrasensitive voltammetric determination of catechol at a gold atomic cluster/poly(3,4-ethylenedioxythiophene) nanocomposite electrode
-
[53] Nambiar, S.R., Aneesh, P.K., Rao, T.P., Ultrasensitive voltammetric determination of catechol at a gold atomic cluster/poly(3,4-ethylenedioxythiophene) nanocomposite electrode. Analyst 138 (2013), 5031–5038.
-
(2013)
Analyst
, vol.138
, pp. 5031-5038
-
-
Nambiar, S.R.1
Aneesh, P.K.2
Rao, T.P.3
-
54
-
-
0004216424
-
J. Fundamentals of Electrochemical Analysis
-
Ellis Horwood New York
-
[54] Galus, Z., Chalmers, R.A., Bryce, W.A., J. Fundamentals of Electrochemical Analysis. 1994, Ellis Horwood, New York.
-
(1994)
-
-
Galus, Z.1
Chalmers, R.A.2
Bryce, W.A.3
-
55
-
-
84861570375
-
Silver nanoparticle–carbon nanotube hybrid films: preparation and electrochemical sensing
-
[55] Yu, A., Wang, Q., Yong, J., Mahon, P.J., Malherbe, F., Wang, F., Zhang, H., Wang, J., Silver nanoparticle–carbon nanotube hybrid films: preparation and electrochemical sensing. Electrochim. Acta 74 (2012), 111–116.
-
(2012)
Electrochim. Acta
, vol.74
, pp. 111-116
-
-
Yu, A.1
Wang, Q.2
Yong, J.3
Mahon, P.J.4
Malherbe, F.5
Wang, F.6
Zhang, H.7
Wang, J.8
-
56
-
-
84865071894
-
Nanostructuring platinum nanoparticles on multilayered graphene petal nanosheets for electrochemical biosensing
-
[56] Claussen, J.C., Kumar, A., Jaroch, D.B., Khawaja, M.H., Hibbard, A.B., Porterfield, D.M., Fisher, T.S., Nanostructuring platinum nanoparticles on multilayered graphene petal nanosheets for electrochemical biosensing. Adv. Funct. Mater. 22 (2012), 3399–3405.
-
(2012)
Adv. Funct. Mater.
, vol.22
, pp. 3399-3405
-
-
Claussen, J.C.1
Kumar, A.2
Jaroch, D.B.3
Khawaja, M.H.4
Hibbard, A.B.5
Porterfield, D.M.6
Fisher, T.S.7
-
57
-
-
84655162801
-
Synthesis of a graphene carbon nanotube composite and its electrochemical sensing of hydrogen peroxide
-
[57] Woo, S., Kim, Y.R., Chung, T.D., Piao, Y., Kim, H., Synthesis of a graphene carbon nanotube composite and its electrochemical sensing of hydrogen peroxide. Electrochim. Acta 59 (2012), 509–523.
-
(2012)
Electrochim. Acta
, vol.59
, pp. 509-523
-
-
Woo, S.1
Kim, Y.R.2
Chung, T.D.3
Piao, Y.4
Kim, H.5
-
58
-
-
84858217606
-
2 and glucose sensing
-
2 and glucose sensing. RSC Adv. 2 (2012), 538–545.
-
(2012)
RSC Adv.
, vol.2
, pp. 538-545
-
-
Zhang, Y.1
Liu, S.2
Qin, X.3
Tian, J.4
Lu, W.5
Chang, G.6
Sun, X.7
-
59
-
-
78651287791
-
Stable aqueous dispersion of graphene nanosheets: noncovalent functionalization by a polymeric reducing agent and their subsequent decoration with Ag nanoparticles for enzymeless hydrogen peroxide detection
-
[59] Liu, S., Tian, J.Q., Wang, L., Zhang, Y.W., Sun, X.P., Stable aqueous dispersion of graphene nanosheets: noncovalent functionalization by a polymeric reducing agent and their subsequent decoration with Ag nanoparticles for enzymeless hydrogen peroxide detection. Macromolecules 43 (2010), 10078–10083.
-
(2010)
Macromolecules
, vol.43
, pp. 10078-10083
-
-
Liu, S.1
Tian, J.Q.2
Wang, L.3
Zhang, Y.W.4
Sun, X.P.5
-
60
-
-
79955925644
-
Carbon nanotube decorated with silver nanoparticles via noncovalent interaction for a novel non-enzymatic sensor towards hydrogen peroxide reduction
-
[60] Shi, Y., Liu, Z., Zhao, B., Sun, Y., Xu, F., Zhang, Y., Wen, Z., Yang, H., Li, Z., Carbon nanotube decorated with silver nanoparticles via noncovalent interaction for a novel non-enzymatic sensor towards hydrogen peroxide reduction. J. Electroanal. Chem. 656 (2011), 29–33.
-
(2011)
J. Electroanal. Chem.
, vol.656
, pp. 29-33
-
-
Shi, Y.1
Liu, Z.2
Zhao, B.3
Sun, Y.4
Xu, F.5
Zhang, Y.6
Wen, Z.7
Yang, H.8
Li, Z.9
-
61
-
-
84893162830
-
A facile one pot green synthesis of reduced graphene oxide and its composites for non-enzymatic hydrogen peroxide sensor applications
-
[61] Gnanakumar, G., Babu, K.J., Nahm, K.S., Hwang, Y.J., A facile one pot green synthesis of reduced graphene oxide and its composites for non-enzymatic hydrogen peroxide sensor applications. RSC Adv. 4 (2014), 7944–7951.
-
(2014)
RSC Adv.
, vol.4
, pp. 7944-7951
-
-
Gnanakumar, G.1
Babu, K.J.2
Nahm, K.S.3
Hwang, Y.J.4
-
62
-
-
84930823580
-
Facile synthesis of boron-doped graphene nanosheets with hierarchical microstructure at atmosphere pressure for metal-free electrochemical detection of hydrogen peroxide
-
[62] Yeh, M.H., Li, Y.S., Chen, G.L., Lin, L.Y., Li, T.J., Chuang, H.M., Hsieh, C.Y., Lo, S.C., Chiang, W.H., Facile synthesis of boron-doped graphene nanosheets with hierarchical microstructure at atmosphere pressure for metal-free electrochemical detection of hydrogen peroxide. Electrochimi. Acta 172 (2015), 52–60.
-
(2015)
Electrochimi. Acta
, vol.172
, pp. 52-60
-
-
Yeh, M.H.1
Li, Y.S.2
Chen, G.L.3
Lin, L.Y.4
Li, T.J.5
Chuang, H.M.6
Hsieh, C.Y.7
Lo, S.C.8
Chiang, W.H.9
-
63
-
-
84941584594
-
Dual-function amperometric sensors based on poly(diallydimethylammoniun chloride)-functionalized reduced graphene oxide/manganese dioxide/gold nanoparticles nanocomposite
-
[63] Zhang, C., Zhang, Y.Y., Miao, Z.Y., Ma, M., Du, X., Lin, J.H., Han, B.K., Takahashi, S., Anzai, J., Chen, Q., Dual-function amperometric sensors based on poly(diallydimethylammoniun chloride)-functionalized reduced graphene oxide/manganese dioxide/gold nanoparticles nanocomposite. Sensors Actuators B Chem. 222 (2016), 663–673.
-
(2016)
Sensors Actuators B Chem.
, vol.222
, pp. 663-673
-
-
Zhang, C.1
Zhang, Y.Y.2
Miao, Z.Y.3
Ma, M.4
Du, X.5
Lin, J.H.6
Han, B.K.7
Takahashi, S.8
Anzai, J.9
Chen, Q.10
-
65
-
-
84940787379
-
Recent trends in carbon nanomaterial-based electrochemical sensors for biomolecules: a review
-
[65] Yang, C., Denno, M.E., Pyakurel, P., Venton, B.J., Recent trends in carbon nanomaterial-based electrochemical sensors for biomolecules: a review. Anal. Chim. Acta 887 (2015), 17–37.
-
(2015)
Anal. Chim. Acta
, vol.887
, pp. 17-37
-
-
Yang, C.1
Denno, M.E.2
Pyakurel, P.3
Venton, B.J.4
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