21. Schedin, F., Geim, A. K., Morozov, S. V., Hill, E. W., Blake, P., Katsnelson, M. I., et al.
(2007). Detection of individual gas molecules adsorbed on graphene. Nature Materials, 6,
652–6559.
22. Morozov, S. V., Novoselov, K. S., Katsnelson, M. I., Schedin, F., Elias, D. C., Jaszczak, J. A.,
et al. (2008). Giant intrinsic carrier mobilities in graphene and its bilayer. Physical Review
Letters, 100, 016602–016604.
23. Ritter, K. A., & Lyding, J. W. (2009). The Influence of edge structure on the electronic
properties of graphene quantum dots and nanoribbons. Nature Materials, 8, 235–242.
24. Wang, X., Zhi, L., & Mullen, K. (2008). Transparent conductive graphene electrodes for
dye-sensitized solar cells. Nano Letters, 8, 323–330.
25. Dai, L. (2013). Functionalization of graphene for efficient energy conversion and storage.
Accounts of Chemical Research, 46, 31–42.
26. Polyushkin, D. K., Milton, J., Santandrea, S., Russo, S., Craciun, M. F., Green, S. J., et al.
(2013) Graphene as a substrate for plasmonic nanoparticles. Journal of Optics, 114001, 6 pp.
27. Abdi, M. M., Abdullah, L. C., Sadrolhosseini, A. R., Yunus, W. M. M., Moksin, M. M., &
Md. Tahir, P. (2011). Surface plasmon resonance sensing detection of mercury and lead ions
based on conducting polymer composite. PLoS One, 6, 1–9.
28. Zheng, P., & Wu, N. (2017). Fluorescence and sensing applications of graphene oxide and
graphene quantum dots: A review. Chemistry an Asian Journal, 12, 2343–2353.
29. Zhou, Y., Liu, B., Yang, R., & Liu, J. (2017). Filling in the gaps between nanozymes and
enzymes: Challenges and opportunities. Bioconjugate Chemistry, 28, 122903–122909.
30. Wu, J., Wang, X., Wang, Q., Lou, Z., Li, S., Zhu, Y., et al. (2019). Nanomaterials with
enzyme-like characteristics (nanozymes): Next-generation artificial enzymes (II). Chemical
Society Reviews, 48, 1004–1076.
31. Ceken, B., Kandaz, M., & Koca, A. (2012). Electrochemical metal-ion sensors based on a
novel manganese phthalocyanine complex. Synthetic Metals, 77, 1524–1530.
32. Chow, E., & Gooding, J. J. (2006). Peptide modified electrodes as electrochemical metal ion
sensors. Electroanalysis, 18, 1437–1448.
33. Gebbink, R. J. M. K., Klink, S. I., Feiters, M. C., & Nolte, R. J. M. (2000). “Crowned” Fe 4 S 4
clusters as electrochemical metal ion sensors. European Journal of Inorganic Chemistry, 2,
253–264.
34. Zaaba, N. I., Foo, K. L., Hashim, U., Tan, S. J., Liu, W.-W., & Voon, C. H. (2017). Synthesis
of graphene oxide using modified hummers method: Solvent influence synthesis of graphene
oxide using modified hummers method: Solvent influence. Procedia Engineering, 184, 469–
477.
35. Zhang, J., Yang, H., Shen, G., Cheng, P., Zhang, J., & Guo, S. (2010). Reduction of graphene
oxide via L-ascorbic acid. Chemical Communications, 46, 1112–1114.
36. Liu, J., Li, S., Zhang, B., Xiao, Y., Gao, Y., Yang, Q., et al. (2017). Ultrasensitive and low
detection limit of nitrogen dioxide gas sensor based on flower-like ZnO hierarchical
nanostructure modified by reduced graphene oxide. Sensors and Actuators B: Chemical, 249,
715–724.
37. Muralikrishna, S., Sureshkumar, K., Thomas, S., Varley, D., Nagaraju, H., &
Ramakrishnappa, T. (2014). In situ reduction and functionalization of graphene oxide with
L-cysteine for simultaneous electrochemical determination of cadmium (II), lead(II), copper
(II), and mercury(II) ions. Analytical Methods, 6, 8698–8705.
38. Rabchinskii, M. K., Dideikin, A. T., Kirilenko, D. A., Baidakova, M. V., Shnitov, V. V.,
Roth, F., et al. (2018). Reduction of graphene oxide suspensions and films using glass wafers.
Scientific Reports, 8, 14154.
39. Johra, F. T., Lee, J. W., & Jung, W. G. (2014). Facile and safe graphene preparation on
solution based platform. Journal of Industrial Engineering Chemistry, 20, 2883–2887.
40. Li, B., Guo, Y., Iqbal, A., Dong, Y., Li, W., Liu, W., et al. (2016). Insight into
excitation-related luminescence properties of carbon dots: Synergistic effect from photoluminescence centers in the carbon core and on the surface. RSC Advances, 6, 107263–107269.
Plasmonic Nanoparticles Decorated Graphene Sheets for Detection …
103
(2007). Detection of individual gas molecules adsorbed on graphene. Nature Materials, 6,
652–6559.
22. Morozov, S. V., Novoselov, K. S., Katsnelson, M. I., Schedin, F., Elias, D. C., Jaszczak, J. A.,
et al. (2008). Giant intrinsic carrier mobilities in graphene and its bilayer. Physical Review
Letters, 100, 016602–016604.
23. Ritter, K. A., & Lyding, J. W. (2009). The Influence of edge structure on the electronic
properties of graphene quantum dots and nanoribbons. Nature Materials, 8, 235–242.
24. Wang, X., Zhi, L., & Mullen, K. (2008). Transparent conductive graphene electrodes for
dye-sensitized solar cells. Nano Letters, 8, 323–330.
25. Dai, L. (2013). Functionalization of graphene for efficient energy conversion and storage.
Accounts of Chemical Research, 46, 31–42.
26. Polyushkin, D. K., Milton, J., Santandrea, S., Russo, S., Craciun, M. F., Green, S. J., et al.
(2013) Graphene as a substrate for plasmonic nanoparticles. Journal of Optics, 114001, 6 pp.
27. Abdi, M. M., Abdullah, L. C., Sadrolhosseini, A. R., Yunus, W. M. M., Moksin, M. M., &
Md. Tahir, P. (2011). Surface plasmon resonance sensing detection of mercury and lead ions
based on conducting polymer composite. PLoS One, 6, 1–9.
28. Zheng, P., & Wu, N. (2017). Fluorescence and sensing applications of graphene oxide and
graphene quantum dots: A review. Chemistry an Asian Journal, 12, 2343–2353.
29. Zhou, Y., Liu, B., Yang, R., & Liu, J. (2017). Filling in the gaps between nanozymes and
enzymes: Challenges and opportunities. Bioconjugate Chemistry, 28, 122903–122909.
30. Wu, J., Wang, X., Wang, Q., Lou, Z., Li, S., Zhu, Y., et al. (2019). Nanomaterials with
enzyme-like characteristics (nanozymes): Next-generation artificial enzymes (II). Chemical
Society Reviews, 48, 1004–1076.
31. Ceken, B., Kandaz, M., & Koca, A. (2012). Electrochemical metal-ion sensors based on a
novel manganese phthalocyanine complex. Synthetic Metals, 77, 1524–1530.
32. Chow, E., & Gooding, J. J. (2006). Peptide modified electrodes as electrochemical metal ion
sensors. Electroanalysis, 18, 1437–1448.
33. Gebbink, R. J. M. K., Klink, S. I., Feiters, M. C., & Nolte, R. J. M. (2000). “Crowned” Fe 4 S 4
clusters as electrochemical metal ion sensors. European Journal of Inorganic Chemistry, 2,
253–264.
34. Zaaba, N. I., Foo, K. L., Hashim, U., Tan, S. J., Liu, W.-W., & Voon, C. H. (2017). Synthesis
of graphene oxide using modified hummers method: Solvent influence synthesis of graphene
oxide using modified hummers method: Solvent influence. Procedia Engineering, 184, 469–
477.
35. Zhang, J., Yang, H., Shen, G., Cheng, P., Zhang, J., & Guo, S. (2010). Reduction of graphene
oxide via L-ascorbic acid. Chemical Communications, 46, 1112–1114.
36. Liu, J., Li, S., Zhang, B., Xiao, Y., Gao, Y., Yang, Q., et al. (2017). Ultrasensitive and low
detection limit of nitrogen dioxide gas sensor based on flower-like ZnO hierarchical
nanostructure modified by reduced graphene oxide. Sensors and Actuators B: Chemical, 249,
715–724.
37. Muralikrishna, S., Sureshkumar, K., Thomas, S., Varley, D., Nagaraju, H., &
Ramakrishnappa, T. (2014). In situ reduction and functionalization of graphene oxide with
L-cysteine for simultaneous electrochemical determination of cadmium (II), lead(II), copper
(II), and mercury(II) ions. Analytical Methods, 6, 8698–8705.
38. Rabchinskii, M. K., Dideikin, A. T., Kirilenko, D. A., Baidakova, M. V., Shnitov, V. V.,
Roth, F., et al. (2018). Reduction of graphene oxide suspensions and films using glass wafers.
Scientific Reports, 8, 14154.
39. Johra, F. T., Lee, J. W., & Jung, W. G. (2014). Facile and safe graphene preparation on
solution based platform. Journal of Industrial Engineering Chemistry, 20, 2883–2887.
40. Li, B., Guo, Y., Iqbal, A., Dong, Y., Li, W., Liu, W., et al. (2016). Insight into
excitation-related luminescence properties of carbon dots: Synergistic effect from photoluminescence centers in the carbon core and on the surface. RSC Advances, 6, 107263–107269.
Plasmonic Nanoparticles Decorated Graphene Sheets for Detection …
103
