TY - JOUR
T1 - Dual-channel nano-carbon-liquid/liquid junction electrodes for multi-modal analysis
T2 - redox-active (dopamine) and non-redox-active (acetylcholine)
AU - Anupriya, Edappalil Satheesan
AU - Chen, Ran
AU - Kalski, Daniel
AU - Palmer, Jordynn
AU - Shen, Mei
N1 - We are grateful for the support of this research by a USA National Science Foundation CAREER Award (CHE 19-45274) and Alfred P. Sloan Fellowship (FG-2023-20536) to M. Shen. We thank Dr Honghui Zhou for the helpful discussions for the SEM studies. We thank Dr Joaqu\u00EDn Rodr\u00EDguez-L\u00F3pez and Dr Zachary T. Gossage for their help in building the pyrolysis station. The SEM and FIB experiments were carried out in the Materials Research Laboratory Central Research Facilities, University of Illinois Urbana-Champaign. TEM experiments were carried out in the Beckman Institute for Advanced Science and Technology at University of Illinois Urbana-Champaign.
PY - 2024/12/3
Y1 - 2024/12/3
N2 - We present here a dual-channel nanoelectrode to detect both redox-active and non-redox-active analytes. The dual-channel nanoelectrode was developed from theta nanopipette. We developed one channel of the theta nanopipette to be a carbon nanoelectrode and the other channel to be a nano interface between two immiscible electrolyte solutions (nanoITIES) electrode, producing a nano-carbon-ITIES platform. The carbon nanoelectrode channel was developed by carbon deposition via pyrolysis followed by focused ion beam milling to measure redox-active analytes. The nanoITIES electrode channel was developed to detect non-redox-active analytes. The nano-carbon-ITIES electrodes were characterized using electrochemistry, scanning electron microscopy and transmission electron microscopy. Dopamine (a redox-active analyte) and acetylcholine (a non-redox-active analyte) were measured on the dual-channel nano-carbon-ITIES platform using the carbon nanoelectrode and the nanoITIES electrode, respectively. Using cyclic voltammetry, the diffusion-limited current of dopamine and acetylcholine detection on the nano-carbon-ITIES electrode increased linearly with increasing their concentrations. Using chronoamperometry (current versus time), we showed that the nano-carbon-ITIES electrode detected acetylcholine and dopamine at the same time. The introduced first-ever dual-functional nano-carbon-ITIES electrodes expand the current literature in multi-channel electrodes for multi-purpose analysis, which is an emerging area of research. Developing the analytical capability for the simultaneous detection of acetylcholine and dopamine is a critical step towards understanding diseases and disorders where both dopamine and acetylcholine are involved.
AB - We present here a dual-channel nanoelectrode to detect both redox-active and non-redox-active analytes. The dual-channel nanoelectrode was developed from theta nanopipette. We developed one channel of the theta nanopipette to be a carbon nanoelectrode and the other channel to be a nano interface between two immiscible electrolyte solutions (nanoITIES) electrode, producing a nano-carbon-ITIES platform. The carbon nanoelectrode channel was developed by carbon deposition via pyrolysis followed by focused ion beam milling to measure redox-active analytes. The nanoITIES electrode channel was developed to detect non-redox-active analytes. The nano-carbon-ITIES electrodes were characterized using electrochemistry, scanning electron microscopy and transmission electron microscopy. Dopamine (a redox-active analyte) and acetylcholine (a non-redox-active analyte) were measured on the dual-channel nano-carbon-ITIES platform using the carbon nanoelectrode and the nanoITIES electrode, respectively. Using cyclic voltammetry, the diffusion-limited current of dopamine and acetylcholine detection on the nano-carbon-ITIES electrode increased linearly with increasing their concentrations. Using chronoamperometry (current versus time), we showed that the nano-carbon-ITIES electrode detected acetylcholine and dopamine at the same time. The introduced first-ever dual-functional nano-carbon-ITIES electrodes expand the current literature in multi-channel electrodes for multi-purpose analysis, which is an emerging area of research. Developing the analytical capability for the simultaneous detection of acetylcholine and dopamine is a critical step towards understanding diseases and disorders where both dopamine and acetylcholine are involved.
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U2 - 10.1039/d4an01153h
DO - 10.1039/d4an01153h
M3 - Article
C2 - 39688537
AN - SCOPUS:85212793431
SN - 0003-2654
VL - 150
SP - 414
EP - 424
JO - Analyst
JF - Analyst
IS - 2
ER -