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Programming a hollow core-shell CuS@CuSe heteromicrocubes synergizing superior multienzyme activity function as enhanced biosensing platforms.

Authors :
Ma, Xiaoqing
Tang, Kang-lai
Lu, Kang
Yuan, Binfang
Shi, Wenbing
Li, Yadong
Zhao, Wenxi
Source :
Sensors & Actuators B: Chemical. May2022, Vol. 359, pN.PAG-N.PAG. 1p.
Publication Year :
2022

Abstract

Introducing heterostructures combined by different building blocks (transition metal chalcogenides) enables the regulation of composition and architecture towards boosting electrocatalytic sensing performance. Herein, a successful transformation from well-defined Cu 2 O microcubes to hollow core-shell CuS@CuSe heteromicrocubes are performed via a template-directed in-situ sulfuration and selenization reaction at room temperature and further defined as bifunctional nanozymes to detect H 2 O 2 reduction and DA oxidation, of which the ultrathin CuSe nanosheets vertically wrapping on hollow CuS microcube-like core created plenty of exposed active sites, rich ion-transfer channels, as well as remarkable structural stability, while the existence of interfacial effect between two components can facilitate fast ion/electron transfer to execute cooperative catalytical capacity, thus harvesting highly efficient electrochemical sensor features for catalyzing H 2 O 2 and DA, as reflected by high sensitivity (1005.2 μA mM−1 cm−2 and 60.44 μA μM−1 cm−2), low LOD (30 nM and 0.38 nM), favorable working potential (−0.25 V and 0.20 V) as well as excellent selectivity, powerful long-term stability and outstanding repeatability/reportability. Such preeminent performance is not only superior to single CuS and CuSe counterparts and most designed nanozymes, but also creates satisfactory recoveries and expected accuracy in real human serum samples. Then, designing heterogeneous nanomaterials with matching functions and structures and investigating their potential prospects in electrocatalytic biosensors would guide the exploitation of nanozymes to fulfill the versatile requirements. • Hierarchical core-shell CuS@CuSe hollow microcubes has been constructed. • CuS@CuSe affords abundant active sites, fast reaction kinetics as well as admirable configuration stability. • CuS@CuSe/GCE displayed significantly enhanced biosensing properties for H 2 O 2 reduction and DA oxidation. • Powerful tolerance and satisfactory accuracy towards H 2 O 2 and DA determination achieved in real samples. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
09254005
Volume :
359
Database :
Academic Search Index
Journal :
Sensors & Actuators B: Chemical
Publication Type :
Academic Journal
Accession number :
155726999
Full Text :
https://doi.org/10.1016/j.snb.2022.131592