Defining the Value of Injection Current and Effective Electrical Contact Area for EGaIn-Based Molecular Tunneling Junctions
Определение величины инжекционного тока и эффективной площади электрического контакта для молекулярных туннельных переходов на основе EGaIn
2013-11-04
SCID: 54.1/axgazg6x
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EGaIn molecular tunneling junctionseffective electrical contact areainjection tunnel current densityself-assembled monolayerstunneling decay factor
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Abstract (AI)
Analysis of rates of tunneling across self-assembled monolayers (SAMs) of n-alkanethiolates SCn (with n = number of carbon atoms) incorporated in junctions having structure Ag(TS)-SAM//Ga2O3/EGaIn leads to a value for the injection tunnel current density J0 (i.e., the current flowing through an ideal junction with n = 0) of 10(3.6±0.3) A·cm(-2) (V = +0.5 V). This estimation of J0 does not involve an extrapolation in length, because it was possible to measure current densities across SAMs over the range of lengths n = 1-18. This value of J0 is estimated under the assumption that values of the geometrical contact area equal the values of the effective electrical contact area. Detailed experimental analysis, however, indicates that the roughness of the Ga2O3 layer, and that of the Ag(TS)-SAM, determine values of the effective electrical contact area that are ~10(-4) the corresponding values of the geometrical contact area. Conversion of the values of geometrical contact area into the corresponding values of effective electrical contact area results in J0(+0.5 V) = 10(7.6±0.8) A·cm(-2), which is compatible with values reported for junctions using top-electrodes of evaporated Au, and graphene, and also comparable with values of J0 estimated from tunneling through single molecules. For these EGaIn-based junctions, the value of the tunneling decay factor β (β = 0.75 ± 0.02 Å(-1); β = 0.92 ± 0.02 nC(-1)) falls within the consensus range across different types of junctions (β = 0.73-0.89 Å(-1); β = 0.9-1.1 nC(-1)). A comparison of the characteristics of conical Ga2O3/EGaIn tips with the characteristics of other top-electrodes suggests that the EGaIn-based electrodes provide a particularly attractive technology for physical-organic studies of charge transport across SAMs.
Key Findings
1
Conical Ga2O3/EGaIn electrodes are identified as an attractive platform for physical-organic studies of charge transport through self-assembled monolayers.
2
Correcting for effective rather than geometrical contact area gives J0(+0.5 V) = 10^(7.6±0.8) A·cm⁻², consistent with evaporated-Au, graphene, and single-molecule junction estimates.
3
For Ag(TS)-alkanethiolate SAM//Ga2O3/EGaIn junctions, direct measurements across n = 1–18 yield an injection current density J0 = 10^(3.6±0.3) A·cm⁻² at +0.5 V without length extrapolation.
4
Surface roughness reduces the effective electrical contact area to approximately 10⁻⁴ of the geometrical contact area in these EGaIn junctions.
5
The tunneling decay factor is β = 0.75 ± 0.02 Å⁻¹ (0.92 ± 0.02 nC⁻¹), within the consensus range reported across molecular junction types.
Research Object
EGaIn-based molecular tunneling junctions incorporating n-alkanethiolate self-assembled monolayers (SCn) between Ag(TS) and Ga2O3/EGaIn electrodes
Research Subject
The injection tunnel current density, effective electrical contact area, and tunneling decay factor for charge transport across the SAMs
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2013-11-04
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