TY  - JOUR
T1  - Electrochemical Sensors Based on Dirac Semimental NiTe2in the Detection of SARS-CoV-2
AU  - Bai, Jiangyue
AU  - Jiang, Yujiu
AU  - Xu, Shiqi
AU  - Li, Xiuxia
AU  - Dong, Yina
AU  - Zhang, Chunpan
AU  - Yao, Qinger
AU  - Cheng, Nan
AU  - Gao, Haizhen
AU  - Yang, Yanbo
AU  - Wang, Zhiwei
AU  - Xie, Bingteng
AU  - Zhu, Peng
AU  - Li, Shanshan
AU  - Han, Junfeng
N1  - Publisher Copyright:
© 2025 American Chemical Society
PY  - 2025/9/16
Y1  - 2025/9/16
N2  - In the present study, a topological semimetal NiTe2-based electrochemical biosensor was designed and fabricated, leveraging the material’s inherent topological surface state and conductive bulk properties. The NiTe2electrode was fabricated via mechanical exfoliation from a high-quality NiTe2single crystal. Owing to its robust layered structure and unique Dirac surface states, the topological semimetal NiTe2facilitates rapid electron transfer at the electrode surface, thereby enhancing the sensor’s performance. The developed biosensor showed a linear response range for DNA concentrations spanning from 10–15to 10–7M, with a detection limit as low as 10–16M. In contrast, its detection response toward RNA was more sensitive, covering a concentration range of 10–18to 10–15M. Furthermore, this sensor was employed for the detection of synthetic SARS-CoV-2 pseudovirus at a concentration of 1000 copies/mL. The results demonstrated that the sensor could effectively differentiate between negative and positive samples, exhibiting excellent sensitivity, specificity, and stability. Consequently, the NiTe2-based biosensor possesses significant potential for application in the clinical diagnosis of SARS-CoV-2 pathogens and other acute infectious diseases.
AB  - In the present study, a topological semimetal NiTe2-based electrochemical biosensor was designed and fabricated, leveraging the material’s inherent topological surface state and conductive bulk properties. The NiTe2electrode was fabricated via mechanical exfoliation from a high-quality NiTe2single crystal. Owing to its robust layered structure and unique Dirac surface states, the topological semimetal NiTe2facilitates rapid electron transfer at the electrode surface, thereby enhancing the sensor’s performance. The developed biosensor showed a linear response range for DNA concentrations spanning from 10–15to 10–7M, with a detection limit as low as 10–16M. In contrast, its detection response toward RNA was more sensitive, covering a concentration range of 10–18to 10–15M. Furthermore, this sensor was employed for the detection of synthetic SARS-CoV-2 pseudovirus at a concentration of 1000 copies/mL. The results demonstrated that the sensor could effectively differentiate between negative and positive samples, exhibiting excellent sensitivity, specificity, and stability. Consequently, the NiTe2-based biosensor possesses significant potential for application in the clinical diagnosis of SARS-CoV-2 pathogens and other acute infectious diseases.
UR  - http://www.scopus.com/pages/publications/105016409374
U2  - 10.1021/acs.langmuir.5c03027
DO  - 10.1021/acs.langmuir.5c03027
M3  - Article
C2  - 40891295
AN  - SCOPUS:105016409374
SN  - 0743-7463
VL  - 41
SP  - 24723
EP  - 24734
JO  - Langmuir
JF  - Langmuir
IS  - 36
ER  -