Without Contact Resistance, Proteins in Thin-Film Solid-State Junctions Can Be Efficient Electronic Conducting Materials.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 40970787.
- Also identified by DOI 10.1002/adma.202507654 and PMC identifier 12783954.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
The solid-state protein junctions have shown efficient electron transport over a few tens of nanometer lengthscale. This work demonstrates, how the contact resistance ( <math xmlns="http://www.w3.org/1998/Math/MathML"> <semantics> <mover><msub><mi>R</mi> <mi>C</mi></msub> <mo>̂</mo></mover> <annotation>$\widehat {{R_{\mathrm{C}}}}$</annotation></semantics> </math> ) of a solid-state protein junctions, treated as a contact-limited process, which can be extracted quantitatively from the measured junction resistance (R<sub>P</sub>) by using the extrapolated zero-length resistance and series resistance (R<sub>S</sub>). Alternating current (impedance spectroscopy) and direct current measurements are used to examine charge transport in junctions of human serum albumin (HSA) and bacteriorhodopsin (bR) films with varying thicknesses. Three contact configurations, Si-Au, Au-eutectic gallium indium (EGaIn), and, in a micropore device (MpD), Au-Pd, are compared. While Si-Au and Au-EGaIn junctions exhibit substantial <math xmlns="http://www.w3.org/1998/Math/MathML"> <semantics> <mover><msub><mi>R</mi> <mi>C</mi></msub> <mo>̂</mo></mover> <annotation>$\widehat {{R_{\mathrm{C}}}}$</annotation></semantics> </math> that are ascribed to interfacial oxides and electrostatic protein-electrode interactions, MpD effectively eliminates <math xmlns="http://www.w3.org/1998/Math/MathML"> <semantics> <mover><msub><mi>R</mi> <mi>C</mi></msub> <mo>̂</mo></mover> <annotation>$\widehat {{R_{\mathrm{C}}}}$</annotation></semantics> </math> , enabling measuring the intrinsic electron transport across HSA and bR films. The exponential length-dependence of R<sub>P</sub> shows a transport decay constant (β) that varies with interfacial conditions, underscoring the role of contact engineering. By minimizing <math xmlns="http://www.w3.org/1998/Math/MathML"> <semantics> <mover><msub><mi>R</mi> <mi>C</mi></msub> <mo>̂</mo></mover> <annotation>$\widehat {{R_{\mathrm{C}}}}$</annotation></semantics> </math> , exceptionally low β values (≈0.7-1.1 nm<sup>-1</sup>) are found, proving that, indeed, proteins can have outstanding charge transport efficiencies.
Medical subject headings
- Bacteriorhodopsins
- Electric Conductivity
- Serum Albumin, Human