TY - JOUR
T1 - Nano- and micro-gap electrochemical transducers: Novel benchtop fabrication techniques and electrical migration effects
AU - Marken, Frank
AU - Mathwig, Klaus
PY - 2018/1
Y1 - 2018/1
N2 - Redox feedback mechanisms can be exploited in electroanalytical detection right to the limit of single molecules being observed. The process relies on anode and cathode being placed extremely close together to minimize diffusion time. In addition to the more complex and expensive nanofabrication tools, there are attempts of “benchtop” micro-gap and nano-gap fabrication to exploit deposition and etch reactions in the assembly. An overview is given summarizing recent methodology development and emerging applications in electroanalysis. One important implication of a very close anode-to-cathode distance is migration of ions in a strong electric field when no electrolyte is used, leading to ion accumulation and a change in signal amplification. Phenomena of this type and geometry/functional implications are considered.
AB - Redox feedback mechanisms can be exploited in electroanalytical detection right to the limit of single molecules being observed. The process relies on anode and cathode being placed extremely close together to minimize diffusion time. In addition to the more complex and expensive nanofabrication tools, there are attempts of “benchtop” micro-gap and nano-gap fabrication to exploit deposition and etch reactions in the assembly. An overview is given summarizing recent methodology development and emerging applications in electroanalysis. One important implication of a very close anode-to-cathode distance is migration of ions in a strong electric field when no electrolyte is used, leading to ion accumulation and a change in signal amplification. Phenomena of this type and geometry/functional implications are considered.
U2 - 10.1016/j.coelec.2017.10.004
DO - 10.1016/j.coelec.2017.10.004
M3 - Review article
SN - 2451-9103
VL - 7
SP - 15
EP - 21
JO - Current Opinion in Electrochemistry
JF - Current Opinion in Electrochemistry
ER -