2022
DOI: 10.1039/d1nr06758c
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MOF-derived electrochemical catalyst Cu–N/C for the enhancement of amperometric oxygen detection

Abstract: Electrochemical sensors utilizing ionic liquids as electrolytes for oxygen detecting are now getting more and more attention. Recently, an ionic liquid combined with electrochemical active catalyst system has become popular...

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Cited by 11 publications
(2 citation statements)
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“…3D) indicate the existence of four dominating signals of doping N, including pyridinic-N (398.5 eV), Cu–N (399.2 eV), pyrrolic-N (399.8 eV) and graphitic-N (400.5 eV). 38 The proposed DCD-CDs/Cu-300 has a higher proportion of both Cu–N and graphitic N. In Fig. 3E, the broad peak in the range between 530 and 532 eV is from O 1s.…”
Section: Resultsmentioning
confidence: 85%
“…3D) indicate the existence of four dominating signals of doping N, including pyridinic-N (398.5 eV), Cu–N (399.2 eV), pyrrolic-N (399.8 eV) and graphitic-N (400.5 eV). 38 The proposed DCD-CDs/Cu-300 has a higher proportion of both Cu–N and graphitic N. In Fig. 3E, the broad peak in the range between 530 and 532 eV is from O 1s.…”
Section: Resultsmentioning
confidence: 85%
“…IL/MOF composites have been attracting considerable interest for their various applications, including in adsorption separation, ionic conduction, heterogeneous catalysis, electrocatalysis, electrochemistry sensing, photoelectrochemical response, , flame retardants, and functional material synthesis. , IL/MOF composites not only exhibit the properties of both the ILs and the MOFs but also present unique and synergistic functionalities. Meanwhile, a large number of possible combinations between ILs and MOFs can be achieved to tailor the physicochemical properties of new IL/MOF composites. Besides, the rational design and proper functionalization of both ILs and MOFs are effective ways to perform excellent adsorptive separation.…”
Section: Introductionmentioning
confidence: 99%