Journal of Guangdong University of Technology ›› 2022, Vol. 39 ›› Issue (02): 130-136.doi: 10.12052/gdutxb.200170
Yang Jun-song, Zhong Ying-ying, Yu Qian
CLC Number:
[1] ZHANG H J, CHEN J, YANG Y L, et al. Discriminative detection of glutathione in cell lysates based on oxidase-like activity of magnetic nanoporous graphene [J]. Analytical Chemistry, 2019, 91(8): 5004-5010. [2] JIN L H, SUN Y N, SHI L L, et al. PdPt bimetallic nanowires with efficient oxidase mimic activity for the colorimetric detection of acid phosphatase in acidic media [J]. Journal of Materials Chemistry B, 2019, 7(29): 4561-4567. [3] HAYAT A, CUNNINGHAM J, BULBUL G, et al. Evaluation of the oxidase like activity of nanoceria and its application in colorimetric assays [J]. Analytica Chimica Acta, 2015, 885: 140-147. [4] HANSAEM J, JAEYOUNG L. Iridium oxide fabrication and application: a review [J]. Journal of Energy Chemistry, 2020, 46(7): 164-184. [5] XU D, DIAO P, JIN T, et al. Iridium oxide nanoparticles and iridium/iridium oxide nanocomposites: photochemical fabrication and application in catalytic reduction of 4-nitrophenol [J]. ACS Applied Materials & Interfaces, 2015, 7(30): 16738-16749. [6] QUESADA-GONZÁLEZ D, BAIOCCO A, MARTOS A A, et al. Iridium oxide (IV) nanoparticle-based electrocatalytic detection of PBDE [J]. Biosensors & Bioelectronics, 2019, 127: 150-154. [7] SHIVA KUMAR S, HIMABINDU V. Hydrogen production by PEM water electrolysis: a review [J]. Material Science for Energy Technology, 2019, 2(3): 442-454. [8] CARMO M, FRITZ D L, MERGEL J, et al. A comprehensive review on PEM water electrolysis [J]. International Journal of Hydrogen Energy, 2013, 38(12): 4901-4934. [9] ANTOLINI E. Iridium as catalyst and cocatalyst for oxygen evolution/reduction in acidic polymer electrolyte membrane electrolyzers and fuel cells [J]. ACS Catalysis, 2014, 4(5): 1426-1440. [10] QUESADA-GONZÁLEZ D, SENA-TORRALBA A, WICAKSONO W P, et al. Iridium oxide (IV) nanoparticle-based lateral flow immunoassay [J]. Biosensors and Bioelectronics, 2019, 132: 132-135. [11] WANG Q B, ZHANG C J, YU H, et al. The sensitive "Turn-on" fluorescence platform of ascorbic acid based on conjugated polymer nanoparticles [J]. Analytica Chimica Acta, 2020, 1097: 153-160. [12] ABELLÁN-LLOBREGAT A, VIDAL L, RODRÍGUEZ-AMARO R, et al. Evaluation of herringbone carbon nanotubes-modified electrodes for the simultaneous determination of ascorbic acid and uric acid [J]. Electrochimica Acta, 2018, 285: 284-291. [13] XIE Z, SUN X, JIAO J, et al. Ionic liquid-functionalized carbon quantum dots as fluorescent probes for sensitive and selective detection of iron ion and ascorbic acid [J]. Colloid and Surface A: Physicochemical and Engineering Aspects, 2017, 529: 38-44. [14] MOTSHAKERI M, TRAVAS-SEJDIC J, PHILLIPS A R J, et al. Rapid electroanalysis of uric acid and ascorbic acid using a poly (3, 4-ethylenedioxythiophene)-modified sensor with application to milk [J]. Electrochimica Acta, 2018, 265: 184-193. [15] ABELLAN-LLOBREGAT A, GONZALEZ-GAITAN C, VIDAL L, et al. Portable electrochemical sensor based on 4-aminobenzoic acid-functionalized herringbone carbon nanotubes for the determination of ascorbic acid and uric acid in human fluids [J]. Biosensors & Bioelectronics, 2018, 109: 123-131. [16] LI Y, LIN H C, PENG H, et al. A glassy carbon electrode modified with MoS2 nanosheets and poly (3, 4-ethylenedioxythiophene) for simultaneous electrochemical detection of ascorbic acid, dopamine and uric acid [J]. Microchimica Acta, 2016, 183: 2517-2523. [17] ZHANG G, REN L, YAN Z, et al. Rational design and controllable preparation of holey MnO2 nanosheets [J]. Chemical Communications, 2017, 53(20): 2950-2953. [18] KURBANOGLU S, RIVAS L, OZKAN S A, et al. Electrochemically reduced graphene and iridium oxide nanoparticles for inhibition-based angiotensin-converting enzyme inhibitor detection [J]. Biosensors and Bioelectronics, 2017, 88: 122-129. [19] LIU X, WANG X, HAN Q, et al. Facile synthesis of IrO2/rGO nanocomposites with high peroxidase-like activity for sensitive colorimetric detection of low weight biothiols [J]. Talanta, 2019, 203: 227-234. [20] YAN X, SONG Y, WU X, et al. Oxidase-mimicking activity of ultrathin MnO2 nanosheets in colorimetric assay of acetylcholinesterase activity [J]. Nanoscale, 2017, 9: 2317-2323. |
[1] | Liao Xiu-hong, Jiang Yong, Jian Guo-kun, Cheng Gao, Sun Ming. Controllable Synthesis of α-MnO2 Nanowire with Different Length and Its Catalytic Combustion Activity [J]. Journal of Guangdong University of Technology, 2018, 35(05): 75-79. |
[2] | Zhou Zu-wei, Yu Qian, Hao Zhi-feng, Zhang Zuo-hong, Luo Yin-hao, Yu Lin, Dai Li-song. Preparation of Manganese Oxide Supported on Non-woven Fabric and Its Catalytic Performance for Formaldehyde Decomposition [J]. Journal of Guangdong University of Technology, 2018, 35(02): 6-10. |
|