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1,4-benzenedicarbodithioic acid 2-(trimethlysilyl)ethyl ester is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

1228173-20-3

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1228173-20-3 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 1228173-20-3 includes 10 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 7 digits, 1,2,2,8,1,7 and 3 respectively; the second part has 2 digits, 2 and 0 respectively.
Calculate Digit Verification of CAS Registry Number 1228173-20:
(9*1)+(8*2)+(7*2)+(6*8)+(5*1)+(4*7)+(3*3)+(2*2)+(1*0)=133
133 % 10 = 3
So 1228173-20-3 is a valid CAS Registry Number.

1228173-20-3Downstream Products

1228173-20-3Relevant academic research and scientific papers

Optimizing single-molecule conductivity of conjugated organic oligomers with carbodithioate linkers

Xing, Yangjun,Park, Tae-Hong,Venkatramani, Ravindra,Keinan, Shahar,Beratan, David N.,Therien, Michael J.,Borguet, Eric

, p. 7946 - 7956 (2010)

In molecular electronics, the linker group, which attaches the functional molecular core to the electrode, plays a crucial role in determining the overall conductivity of the molecular junction. While much focus has been placed on optimizing molecular core conductivity, there have been relatively few attempts at designing optimal linker groups to metallic or semiconducting electrodes. The vast majority of molecular electronic studies use thiol linker groups; work probing alternative amine linker systems has only recently been explored. Here, we probe single-molecule conductances in phenylene-ethynylene molecules terminated with thiol and carbodithioate linkers, experimentally using STM break-junction methods and theoretically using a nonequilibrium Greens function approach. Experimental studies demonstrate that the carbodithioate linker augments electronic coupling to the metal electrode and lowers the effective barrier for charge transport relative to the conventional thiol linker, thus enhancing the conductance of the linker-phenylene-ethynylene-linker unit; these data underscore that phenylene-ethynylene-based structures are more highly conductive than originally appreciated in molecular electronics applications. The theoretical analysis shows that the nature of sulfur hybridization in these species is responsible for the order-of-magnitude increased conductance in carbodithioate-terminated systems relative to identical conjugated structures that feature classic thiol linkers, independent of the mechanism of charge transport. Interestingly, in these systems, the tunneling current is not dominated by the frontier molecular orbitals. While barriers BT are expected to produce low β values, we show that the competition between tunneling and resonant transport processes allows barriers BT to produce the low β values seen in our experiments. Taken together, these experimental and theoretical studies indicate a promising role for carbodithioate-based connectivity in molecular-scale electronics applications involving metallic and semiconducting electrodes.

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