최소 단어 이상 선택하여야 합니다.
최대 10 단어까지만 선택 가능합니다.
다음과 같은 기능을 한번의 로그인으로 사용 할 수 있습니다.
NTIS 바로가기공업화학 = Applied chemistry for engineering, v.33 no.2, 2022년, pp.188 - 194
이승우 (서울과학기술대학교 정밀화학과) , 이동욱 (서울과학기술대학교 정밀화학과) , 서병관 (서울과학기술대학교 정밀화학과)
This work presents a non-destructive and straightforward approach to assemble a large-scale conductive electronic film made of a pre-treated single-walled carbon nanotube (SWCNT) solution. For effective electron transfer between the immobilized enzyme and SWCNT electronic film, we optimized the pre-...
J. Wang, Glucose biosensors: 40 years of advances and challenges, Electroanalysis, 13, 983-988 (2001).
N. J. Ronkainen, H. B. Halsall, and W. R. Heineman, Electrochemical biosensors, Chem. Soc. Rev., 39, 1747-1763 (2010).
C. Jang, H. J. Lee, and J. G. Yook, Radio-frequency biosensors for real-time and continuous glucose detection, Sensors, 21, 1843 (2021).
M. Hatada, N. Loew, Y. Inose-Takahashi, J. Okuda-Shimazaki, W. Tsugawa, A. Mulchandani, and K. Sode, Development of a glucose sensor employing quick and easy modification method with mediator for altering electron acceptor preference, Bioelectrochemistry, 121, 185-190 (2018).
Y. X. Liu, J. Zhang, Y. Cheng, and S. P. Jiang, Effect of carbon nanotubes on direct electron transfer and electrocatalytic activity of immobilized glucose oxidase, ACS Omega, 3, 667-676 (2018).
Z. Y. Yin, Z. W. Ji, W. D. Zhang, E. W. Taylor, X. P. Zeng, and J. J. Wei, The glucose effect on direct electrochemistry and electron transfer reaction of glucose oxidase entrapped in a carbon nanotube-Polymer Matrix, ChemistrySelect, 5, 12224-12231 (2020).
Y. Y. Yu, Z. G. Chen, S. J. He, B. B. Zhang, X. C. Li, and M. C. Yao, Direct electron transfer of glucose oxidase and biosensing for glucose based on PDDA-capped gold nanoparticle modified graphene/multi-walled carbon nanotubes electrode, Biosens. Bioelectron., 52, 147-152 (2014).
B. Liang, X.S. Guo, L. Fang, Y.C. Hu, G. Yang, Q. Zhu, J. W. Wei, and X.S. Ye, Study of direct electron transfer and enzyme activity of glucose oxidase on graphene surface, Electrochem. Commun., 50, 1-5 (2015).
J. T. Holland, C. Lau, S. Brozik, and P. Atanassov, S. Banta, Engineering of glucose oxidase for direct electron transfer via site-specific gold nanoparticle conjugation, J. Am. Chem. Soc., 133, 19262-19265 (2011).
X. P. Zhang, D. Liu, L. B. Li, and T. Y. You, Direct electrochemistry of glucose oxidase on novel free-standing nitrogen-doped carbon nanospheres@carbon nanofibers composite film, Sci. Rep., 5, 9885 (2015).
S. Y. Yu, and N. V. Myung, Recent advances in the direct electron transfer-enabled enzymatic fuel cells, Front. Chem., 8 (2021).
P. May, S. Laghmari, and M. Ulbricht, Concentration polarization enabled reactive coating of nanofiltration membranes with zwitterionic hydrogel, Membranes, 11 187 (2021).
D. Lee, H.-H. Ahn, B.-G. Seo, and S.-W. Lee, Highly sensitive and selective enzymatic detection for hydrogen peroxide using a non-destructively assembled single-walled carbon nanotube film, J. Sens. Sci. Technol., 30, 229-235 (2021).
E. M. Perez, and N. Martin, π-π interactions in carbon nanostructures, Chem. Soc. Rev., 44, 6425-6433 (2015).
X. Li, Y. F. Gao, and M. J. Serpe, Reductant-responsive poly(N-isopropylacrylamide) microgels and microgel-based optical materials, Can. J. Chem., 93, 685-689 (2015).
Y. S. Park, K. P. S. S. Hembram, R. Yoo, B. G. Jang, W. Y. Lee, S.-G. Lee, J.-G. Kim, Y.-I. Kim, D.J. Moon, J.-K. Lee, and J.-K. Lee, Reinterpretation of single-wall carbon nanotubes by raman spectroscopy, J. Phys. Chem. C, 123, 14003-14009 (2019).
Y. Z. Niu, J. L. He, Y. L. Li, Y. L. Zhao, C. Y. Xia, G. L. Yuan, L. Zhang, Y. C. Zhang, and C. Yu, Determination of alpha 2,3-sialylated glycans in human serum using a glassy carbon electrode modified with carboxylated multiwalled carbon nanotubes, a polyamidoamine dendrimer, and a glycan-recognizing lectin from Maackia Amurensis, Microchim. Acta., 183, 2337-2344 (2016).
L. Wei, and G. Yushin, Nanostructured activated carbons from natural precursors for electrical double layer capacitors, Nano Energy, 1, 552-565 (2012).
J. Galban, V. Sanz, E. Mateos, I. Sanz-Vicente, A. Delgado-Camon, and S. de Marcos, Reagentless optical biosensors for organic compounds based on autoindicating proteins, Protein Pept. Lett., 15, 772-778 (2008).
A. Devadoss, R. Forsyth, R. Bigham, H. Abbasi, M. Ali, Z. Tehrani, Y. F. Liu, and O. J. Guy, Ultrathin functional polymer modified graphene for enhanced enzymatic electrochemical sensing, Biosensors, 9, 16 (2019).
A. Nemiroski, D.C. Christodouleas, J. W. Hennek, A. A. Kumar, E. J. Maxwell, M. T. Fernandez-Abedul, and G. M. Whitesides, Universal mobile electrochemical detector designed for use in resource-limited applications, Proc. Natl. Acad. Sci. U. S. A., 111, 11984-11989 (2014).
*원문 PDF 파일 및 링크정보가 존재하지 않을 경우 KISTI DDS 시스템에서 제공하는 원문복사서비스를 사용할 수 있습니다.
출판사/학술단체 등이 한시적으로 특별한 프로모션 또는 일정기간 경과 후 접근을 허용하여, 출판사/학술단체 등의 사이트에서 이용 가능한 논문
※ AI-Helper는 부적절한 답변을 할 수 있습니다.