TY - JOUR
T1 - Hydrogen peroxide sensor using the biomimetic structure of peroxidase including a metal organic framework
AU - Ji, Jungyeon
AU - Ko, So Yeon
AU - Choi, Kyung Min
AU - Kwon, Yongchai
N1 - Publisher Copyright:
© 2021 Elsevier B.V.
PY - 2021/7/15
Y1 - 2021/7/15
N2 - In this study, hemin that has excellent catalytic activity is adopted as a catalyst component and other materials, such as metal organic framework (MOF) and carbon nanotube (CNT), are further used to alleviate drawbacks of hemin, such as location issue and molecular aggregation. Based on that, a new catalyst consisting of hemin-encapsulated MOF and CNT is developed (Hemin⊂MIL-88-NH2/CNT). To evaluate its catalytic activity, colorimetric and electrochemical evaluations are conducted. When colorimetric method is used, Hemin⊂MIL-88-NH2/CNT shows good catalytic activity due to proper interaction between water media and amine bond of MOF. In electrochemical evaluations, Hemin⊂MIL-88-NH2/CNT has high sensitivity (0.538 μAμM−1cm−2) and low detection limit (0.06 μM) at 0.5–203 μM (R2 = 0.999). Even in amperometric response tests, when 10 μM H2O2 is injected, Hemin⊂MIL-88-NH2/CNT shows a better response than other heme protein- based catalysts ((Hb, Mb and HRP)/CNT) by 2.06–3.26 times. In terms of stability, its catalytic activity is well preserved even under harsh pH and temperature conditions for a long time (89.5% of the initial value after 15 days). With that, it is confirmed that the Hemin⊂MIL-88-NH2/CNT as the catalyst for use in H2O2 sensors is attractive and better than other heme proteins.
AB - In this study, hemin that has excellent catalytic activity is adopted as a catalyst component and other materials, such as metal organic framework (MOF) and carbon nanotube (CNT), are further used to alleviate drawbacks of hemin, such as location issue and molecular aggregation. Based on that, a new catalyst consisting of hemin-encapsulated MOF and CNT is developed (Hemin⊂MIL-88-NH2/CNT). To evaluate its catalytic activity, colorimetric and electrochemical evaluations are conducted. When colorimetric method is used, Hemin⊂MIL-88-NH2/CNT shows good catalytic activity due to proper interaction between water media and amine bond of MOF. In electrochemical evaluations, Hemin⊂MIL-88-NH2/CNT has high sensitivity (0.538 μAμM−1cm−2) and low detection limit (0.06 μM) at 0.5–203 μM (R2 = 0.999). Even in amperometric response tests, when 10 μM H2O2 is injected, Hemin⊂MIL-88-NH2/CNT shows a better response than other heme protein- based catalysts ((Hb, Mb and HRP)/CNT) by 2.06–3.26 times. In terms of stability, its catalytic activity is well preserved even under harsh pH and temperature conditions for a long time (89.5% of the initial value after 15 days). With that, it is confirmed that the Hemin⊂MIL-88-NH2/CNT as the catalyst for use in H2O2 sensors is attractive and better than other heme proteins.
KW - Biomimetic structure
KW - Hemin
KW - Hydrogen peroxide reduction reaction
KW - Hydrogen peroxide sensor
KW - Metal organic framework
UR - http://www.scopus.com/inward/record.url?scp=85103271882&partnerID=8YFLogxK
U2 - 10.1016/j.apsusc.2020.148786
DO - 10.1016/j.apsusc.2020.148786
M3 - Article
AN - SCOPUS:85103271882
SN - 0169-4332
VL - 554
JO - Applied Surface Science
JF - Applied Surface Science
M1 - 148786
ER -