electrochemical label
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Micromachines ◽  
2022 ◽  
Vol 13 (1) ◽  
pp. 104
Author(s):  
Shahrzad Forouzanfar ◽  
Nezih Pala ◽  
Chunlei Wang

The electrochemical label-free aptamer-based biosensors (also known as aptasensors) are highly suitable for point-of-care applications. The well-established C-MEMS (carbon microelectromechanical systems) platforms have distinguishing features which are highly suitable for biosensing applications such as low background noise, high capacitance, high stability when exposed to different physical/chemical treatments, biocompatibility, and good electrical conductivity. This study investigates the integration of bipolar exfoliated (BPE) reduced graphene oxide (rGO) with 3D C-MEMS microelectrodes for developing PDGF-BB (platelet-derived growth factor-BB) label-free aptasensors. A simple setup has been used for exfoliation, reduction, and deposition of rGO on the 3D C-MEMS microelectrodes based on the principle of bipolar electrochemistry of graphite in deionized water. The electrochemical bipolar exfoliation of rGO resolves the drawbacks of commonly applied methods for synthesis and deposition of rGO, such as requiring complicated and costly processes, excessive use of harsh chemicals, and complex subsequent deposition procedures. The PDGF-BB affinity aptamers were covalently immobilized by binding amino-tag terminated aptamers and rGO surfaces. The turn-off sensing strategy was implemented by measuring the areal capacitance from CV plots. The aptasensor showed a wide linear range of 1 pM–10 nM, high sensitivity of 3.09 mF cm−2 Logc−1 (unit of c, pM), and a low detection limit of 0.75 pM. This study demonstrated the successful and novel in-situ deposition of BPE-rGO on 3D C-MEMS microelectrodes. Considering the BPE technique’s simplicity and efficiency, along with the high potential of C-MEMS technology, this novel procedure is highly promising for developing high-performance graphene-based viable lab-on-chip and point-of-care cancer diagnosis technologies.


2022 ◽  
pp. 114000
Author(s):  
Xinmei Song ◽  
Cuiyun Yang ◽  
Ruo Yuan ◽  
Yun Xiang

Talanta ◽  
2021 ◽  
pp. 123049
Author(s):  
Hosna Zare ◽  
Zahra Meshkat ◽  
Behnaz Hatamluyi ◽  
Majid Rezayi ◽  
Kiarash Ghazvini ◽  
...  

2021 ◽  
Vol 9 ◽  
Author(s):  
Sopit Phetsang ◽  
Duangruedee Khwannimit ◽  
Parawee Rattanakit ◽  
Narong Chanlek ◽  
Pinit Kidkhunthod ◽  
...  

A novel copper (II) ions [Cu(II)]-graphene oxide (GO) nanocomplex-modified screen-printed carbon electrode (SPCE) is successfully developed as a versatile electrochemical platform for construction of sensors without an additionally external redox probe. A simple strategy to prepare the redox GO-modified SPCE is described. Such redox GO based on adsorbed Cu(II) is prepared by incubation of GO-modified SPCE in the Cu(II) solution. This work demonstrates the fabrications of two kinds of electrochemical sensors, i.e., a new label-free electrochemical immunosensor and non-enzymatic sensor for detections of immunoglobulin G (IgG) and glucose, respectively. Our immunosensor based on square-wave voltammetry (SWV) of the redox GO-modified electrode shows the linearity in a dynamic range of 1.0–500 pg.mL−1 with a limit of detection (LOD) of 0.20 pg.mL−1 for the detection of IgG while non-enzymatic sensor reveals two dynamic ranges of 0.10–1.00 mM (sensitivity = 36.31 μA.mM−1.cm−2) and 1.00–12.50 mM (sensitivity = 3.85 μA.mM−1.cm−2) with a LOD value of 0.12 mM. The novel redox Cu(II)-GO composite electrode is a promising candidate for clinical research and diagnosis.


2021 ◽  
Vol 339 ◽  
pp. 127881
Author(s):  
Karutha Pandian Divya ◽  
Venkataraman Dharuman

2020 ◽  
Vol 75 (1) ◽  
pp. 77-87
Author(s):  
Ece Ç. Yeter ◽  
Samet Şahin ◽  
M. Oguzhan Caglayan ◽  
Zafer Üstündağ

2020 ◽  
Vol 154 ◽  
pp. 112050 ◽  
Author(s):  
Mateusz Śmietana ◽  
Marcin Koba ◽  
Petr Sezemsky ◽  
Katarzyna Szot-Karpińska ◽  
Dariusz Burnat ◽  
...  

2020 ◽  
Vol 305 ◽  
pp. 127438 ◽  
Author(s):  
Kwanele Kunene ◽  
Matthieu Weber ◽  
Myalowenkosi Sabela ◽  
Damien Voiry ◽  
Suvardhan Kanchi ◽  
...  

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