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Direct Electrochemistry Transfer and Electrocatalysis of Hemoglobin Immobilized in Porous Mn_2O_3

Direct Electrochemistry Transfer and Electrocatalysis of Hemoglobin Immobilized in Porous Mn_2O_3
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摘要 Novel porous Mn2O3 with good crystallinity was synthesized via hard-template method. Hb-Mn2O3 na-nocomposite was prepared and used for biosensor construction. The Hb-Mn2O3-Nafion modified electrode shows fast direct electron transfer and displays good electrocatalytic response to the reduction of H2O2. The response time is less than 5 s, the sensitivity is as high as 493 μA·L·mmol-1·cm-2 in a linear range of 1-100 μmol/L, and the detection limit is 0.16 μmol/L. This modified electrode also shows good stability and reproducibility. This indicates that the porous Mn2O3 provides a good matrix for enzyme immobilization and biosensor construction. Novel porous Mn2O3 with good crystallinity was synthesized via hard-template method. Hb-Mn2O3 na-nocomposite was prepared and used for biosensor construction. The Hb-Mn2O3-Nafion modified electrode shows fast direct electron transfer and displays good electrocatalytic response to the reduction of H2O2. The response time is less than 5 s, the sensitivity is as high as 493 μA·L·mmol-1·cm-2 in a linear range of 1-100 μmol/L, and the detection limit is 0.16 μmol/L. This modified electrode also shows good stability and reproducibility. This indicates that the porous Mn2O3 provides a good matrix for enzyme immobilization and biosensor construction.
出处 《Chemical Research in Chinese Universities》 SCIE CAS CSCD 2011年第2期291-294,共4页 高等学校化学研究(英文版)
基金 Supported by the National Basic Research Program of China(No.2011CB935700) the National Natural Science Foundation of China(No.U0734002)
关键词 Porous Mn203 BIOSENSOR Direct electrochemistry ELECTROCATALYSIS HEMOGLOBIN Porous Mn203 Biosensor Direct electrochemistry Electrocatalysis Hemoglobin
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