• 대한전기학회
Mobile QR Code QR CODE : The Transactions of the Korean Institute of Electrical Engineers
  • COPE
  • kcse
  • 한국과학기술단체총연합회
  • 한국학술지인용색인
  • Scopus
  • crossref
  • orcid

References

1 
Liu H., Weng L., Yang C., 2017, A review on nanomaterial-based electrochemical sensors for H2O2, H2S and NO inside cells or released by cells, Microchimica Acta, Vol. 184, No. 5, pp. 1267-1283DOI
2 
Wei-Wei W. A. N. G., Yu Q. I. U., ZHANG S. P., Jia-Wei L. I., Xiao-Quan L. U., Xiu-Hui L. I. U., 2014, A hydrogen peroxide sensor based on Pt@Au nanoparticles loading to polyethyleneimine functionalized carbon nanotubes, Chinese Journal of Analytical Chemistry, Vol. 42, No. 6, pp. 835-841DOI
3 
Kozan J. V. B., Silva R. D., Serrano S. H. P., Lima A. W. O., Angnes L., 2007, Biosensing hydrogen peroxide utilizing carbon paste electrodes containing peroxidases naturallyimmobilized on coconut (Cocus nucifera L.) fibers, Analytica Chimica Acta, Vol. 591, No. 2, pp. 200-207DOI
4 
Majidi R., 2013, A biosensor for hydrogen peroxide detection based on electronicproperties of carbon nanotubes, Molecular Physics, Vol. 111, No. 1, pp. 89-93DOI
5 
Miao Y. E., He S., Zhong Y., Yang Z., Tjiu W. W., Liu T., 2013, A novel hydrogen peroxide sensor based on Ag/SnO2 composite nanotubes by electro-spinning, Electrochimica Acta, Vol. 99, No. 1, pp. 117-123DOI
6 
Rajkumar M., Thiagarajan S., Chen S. M., 2011, Electrochemical fabrication of Rh-Pd particles and electrocatalytic applications, Journal of Applied Electrochemistry, Vol. 41, No. 6, pp. 663-668DOI
7 
Chen X., Wu G., Cai Z., Oyama M., Chen X., 2014, Advances in enzyme-free electro- chemical sensors for hydrogen peroxide, glucose, and uric acid, Microchimica Acta, Vol. 181, No. 7, pp. 689-705DOI
8 
Zhang Z., Gu S., Ding Y., Jin J., 2012, A novel nonenzymatic sensor based on LaNi0.6Co0.4O3 modified electrode for hydrogen peroxide and glucose, Anal.Chim. Acta, Vol. 745, pp. 112-117DOI
9 
Meng F., Yan X., Liu J., Gu J., Zou Z., 2011, Nanoporous gold as non-enzymatic sensor for hydrogen peroxide, Electrochimica Acta, Vol. 56, No. 12, pp. 4657-4662DOI
10 
Miscoria S. A., Barrera G. D., Rivas G. A., 2002, Analytical performance of a glucose biosensor prepared by immobilization of glucose oxidase and different metals into a carbon paste electrode, Electro- analysis An International Journal Devoted to Fundamental and Practical Aspects of Electroanalysis, Vol. 14, No. 14, pp. 981-987DOI
11 
Luque G. L., Ferreyra N. F., Rivas G. A., 2006, Glucose biosensor based on the use of a carbon nanotube paste electrode modified with metallic particles, Microchimica Acta, Vol. 152, No. 3-4, pp. 277-283DOI
12 
Hsieh M. W., Whang T. J., 2013, Electro- deposition of PdCu alloy and its application in methanol electro- oxidation, Applied Surface Science, Vol. 270, pp. 252-259DOI
13 
Chen K. J., Pillai K. C., Rick J., Pan C. J., Wang S. H., Liu C. C., Hwang B. J., 2012, Bimetallic PtM (M= Pd, Ir) nanoparticle decorated multi-walled carbon nanotube enzyme-free, mediator-less amperometric sensor for H2O2, Biosensors and Bioelectronics, Vol. 33, No. 1, pp. 120-127DOI
14 
Liu A., Geng H., Xu C., Qiu H., 2011, A three-dimensional hierarchical nanoporous PdCu alloy for enhanced electrocatalysis and biosensing, Analytica chimica acta, Vol. 703, No. 2, pp. 172-178DOI
15 
Lin J., Peng Z., Liu Y., Ruiz-Zepeda F., Ye R., Samuel E. L., Tour J. M., 2014, Laser-induced porous graphene films from commercial polymers, Nature communications, Vol. 5, No. 5714DOI
16 
Kim G. J., Kim T., Pak J., 2018, Development of flexible glucose measurement sensor based on copper nanocube electroplated laser induced graphene electrode, The Korean Institute of Electrical Engineers, Vol. 67, No. 3, pp. 413-418DOI
17 
Ensafi A. A., Abarghoui M. M., Rezaei B., 2014, Electrochemical determination of hydrogen peroxide using copper/porous silicon based non-enzymatic sensor, Sensors and Actuators B: Chemical, Vol. 196, pp. 398-405DOI
18 
JJanyasupab M., Liu C. W., Zhang Y., Wang K. W., Liu C. C., 2013, Bimetallic Pt-M (M= Cu, Ni, Pd, and Rh) nanoporous for H2O2 based amperometric biosensors, Sensors and Actuators B: Chemical, Vol. 179, pp. 209-214DOI
19 
Nandini S., Nalini S., Manjunatha R., Shanmugam S., Melo J. S., Suresh G. S., 2013, Electrochemical biosensor for the selective determination of hydrogen peroxide based on the co-deposition of palladium, horseradish peroxidase on functionalized-graphene modified graphite electrode as composite, Journal of Electroanalytical Chemistry, Vol. 689, pp. 233-242DOI
20 
Anzai J. I., Takeshita H., Kobayashi Y., Osa T., Hoshi T., 1998, Layer-by-layer construction of enzyme multilayers on an electrode for the preparation of glucose and lactate sensors: elimination of ascorbate interference by means of an ascorbate oxidase multilayer, Analytical chemistry, Vol. 70, No. 4, pp. 811-817DOI