Ultrathin Graphdiyne/Graphene Heterostructure as a Robust Electrochemical Sensing Platform.
Xiuchao SunMenglu DuanRongteng LiYuan MengQiang BaiLina WangManhong LiuZhugen YangZhiling ZhuNing SuiPublished in: Analytical chemistry (2022)
Graphdiyne (GDY) has been considered as an appealing electrode material for electrochemical sensing because of its alkyne-rich structure and high degrees of π-conjugation, which shows great affinity to heavy metal ions and pollutant molecules via d-π and π-π interactions. However, the low surface area and poor conductivity of bulk GDY limit its electrochemical performance. Herein, a two-dimensional ultrathin GDY/graphene (GDY/G) nanostructure was synthesized and used as an electrode material for electrochemical sensing. Graphene plays the role of an epitaxy template for few-layered GDY growth and conductive layers. The formed few-layered GDY with a high surface area possesses abundant affinity sites toward heavy metal ions (Cd 2+ , Pb 2+ ) and toxic molecules, for example, nitrobenzene and 4-nitrophenol, via d-π and π-π interactions, respectively. Moreover, hemin as a key part of the enzyme catalytic motif was immobilized on GDY/G via π-π interactions. The artificial enzyme mimic hemin/GDY/G-modified electrode exhibited promising ascorbic acid and uric acid detection performance with excellent sensitivity and selectivity, a good linear range, and reproducibility. More importantly, real sample detection and the feasibility of this electrochemical sensor as a wearable biosensor were demonstrated.
Keyphrases
- label free
- heavy metals
- gold nanoparticles
- molecularly imprinted
- ionic liquid
- carbon nanotubes
- uric acid
- reduced graphene oxide
- quantum dots
- risk assessment
- room temperature
- metabolic syndrome
- health risk
- health risk assessment
- capillary electrophoresis
- high efficiency
- highly efficient
- sewage sludge
- solid state
- high resolution
- heart rate
- solid phase extraction
- single cell
- crystal structure
- metal organic framework