Large Rectification Ratio of up to 106 for Conjugation-Group-Terminated Undecanethiolate Single-Molecule Diodes on Pt Electrodes

Designing and fabricating high-performance single-molecule diodes is always a great pursuit in the field of molecular electronics. For this aim, here, we theoretically design an organic molecule (designated as HSC11BIPY–CC–BIPY), which is composed of a π conjugated BIPY–CC–BIPY group (BIPY is the...

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Veröffentlicht in:Journal of physical chemistry. C 2021-09, Vol.125 (38), p.20783-20790
Hauptverfasser: Zhang, Guang-Ping, Chen, Li-Yuan, Zhao, Jin-Ming, Sun, Yun-Zhe, Shi, Ni-Ping, Wang, Ming-Lang, Hu, Gui-Chao, Wang, Chuan-Kui
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container_end_page 20790
container_issue 38
container_start_page 20783
container_title Journal of physical chemistry. C
container_volume 125
creator Zhang, Guang-Ping
Chen, Li-Yuan
Zhao, Jin-Ming
Sun, Yun-Zhe
Shi, Ni-Ping
Wang, Ming-Lang
Hu, Gui-Chao
Wang, Chuan-Kui
description Designing and fabricating high-performance single-molecule diodes is always a great pursuit in the field of molecular electronics. For this aim, here, we theoretically design an organic molecule (designated as HSC11BIPY–CC–BIPY), which is composed of a π conjugated BIPY–CC–BIPY group (BIPY is the abbreviation of the 4-methyl-2,2′-bipyridyl group and −CC– stands for the ethynylene group) and a long alkyl chain (undecanethiol, abbreviated as HSC11). Then, the corresponding electronic transport properties of the HSC11BIPY–CC–BIPY molecule are investigated by using the nonequilibrium Green's function method in combination with the density functional theory. It is found that the proposed molecule manifests a significant rectifying effect and the rectification ratio is as large as 305 on a Ag electrode and is about 3.4 times larger than that of its analogue previously reported, for which the BIPY–CC–BIPY group is replaced by a BIPY group instead. More interestingly, when the Ag electrodes are changed to Pt electrodes, the rectification ratio is dramatically improved to 6 orders of magnitude and reaches 8.26 × 106. Detailed analysis reveals that when the BIPY group is replaced by the BIPY–CC–BIPY group, there is a significant increase in the number of available channels for tunneling electrons in the proximity of Fermi energy (E F). Also, these electron tunneling channels get much closer to E F on the Pt electrode than that on the Ag electrode, induced by a stronger coupling strength between the molecule and Pt electrode, which leads to a boost in the rectification performance. This work demonstrates the importance and feasibility of the strategy for designing high-performance σ–π-type single-molecule diodes by optimizing the conjugated terminal group and the metal electrode.
doi_str_mv 10.1021/acs.jpcc.1c04093
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For this aim, here, we theoretically design an organic molecule (designated as HSC11BIPY–CC–BIPY), which is composed of a π conjugated BIPY–CC–BIPY group (BIPY is the abbreviation of the 4-methyl-2,2′-bipyridyl group and −CC– stands for the ethynylene group) and a long alkyl chain (undecanethiol, abbreviated as HSC11). Then, the corresponding electronic transport properties of the HSC11BIPY–CC–BIPY molecule are investigated by using the nonequilibrium Green's function method in combination with the density functional theory. It is found that the proposed molecule manifests a significant rectifying effect and the rectification ratio is as large as 305 on a Ag electrode and is about 3.4 times larger than that of its analogue previously reported, for which the BIPY–CC–BIPY group is replaced by a BIPY group instead. More interestingly, when the Ag electrodes are changed to Pt electrodes, the rectification ratio is dramatically improved to 6 orders of magnitude and reaches 8.26 × 106. Detailed analysis reveals that when the BIPY group is replaced by the BIPY–CC–BIPY group, there is a significant increase in the number of available channels for tunneling electrons in the proximity of Fermi energy (E F). Also, these electron tunneling channels get much closer to E F on the Pt electrode than that on the Ag electrode, induced by a stronger coupling strength between the molecule and Pt electrode, which leads to a boost in the rectification performance. This work demonstrates the importance and feasibility of the strategy for designing high-performance σ–π-type single-molecule diodes by optimizing the conjugated terminal group and the metal electrode.</description><identifier>ISSN: 1932-7447</identifier><identifier>EISSN: 1932-7455</identifier><identifier>DOI: 10.1021/acs.jpcc.1c04093</identifier><language>eng</language><publisher>American Chemical Society</publisher><subject>C: Energy Conversion and Storage</subject><ispartof>Journal of physical chemistry. 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C</title><addtitle>J. Phys. Chem. C</addtitle><description>Designing and fabricating high-performance single-molecule diodes is always a great pursuit in the field of molecular electronics. For this aim, here, we theoretically design an organic molecule (designated as HSC11BIPY–CC–BIPY), which is composed of a π conjugated BIPY–CC–BIPY group (BIPY is the abbreviation of the 4-methyl-2,2′-bipyridyl group and −CC– stands for the ethynylene group) and a long alkyl chain (undecanethiol, abbreviated as HSC11). Then, the corresponding electronic transport properties of the HSC11BIPY–CC–BIPY molecule are investigated by using the nonequilibrium Green's function method in combination with the density functional theory. It is found that the proposed molecule manifests a significant rectifying effect and the rectification ratio is as large as 305 on a Ag electrode and is about 3.4 times larger than that of its analogue previously reported, for which the BIPY–CC–BIPY group is replaced by a BIPY group instead. More interestingly, when the Ag electrodes are changed to Pt electrodes, the rectification ratio is dramatically improved to 6 orders of magnitude and reaches 8.26 × 106. Detailed analysis reveals that when the BIPY group is replaced by the BIPY–CC–BIPY group, there is a significant increase in the number of available channels for tunneling electrons in the proximity of Fermi energy (E F). Also, these electron tunneling channels get much closer to E F on the Pt electrode than that on the Ag electrode, induced by a stronger coupling strength between the molecule and Pt electrode, which leads to a boost in the rectification performance. 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C</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Zhang, Guang-Ping</au><au>Chen, Li-Yuan</au><au>Zhao, Jin-Ming</au><au>Sun, Yun-Zhe</au><au>Shi, Ni-Ping</au><au>Wang, Ming-Lang</au><au>Hu, Gui-Chao</au><au>Wang, Chuan-Kui</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Large Rectification Ratio of up to 106 for Conjugation-Group-Terminated Undecanethiolate Single-Molecule Diodes on Pt Electrodes</atitle><jtitle>Journal of physical chemistry. C</jtitle><addtitle>J. Phys. Chem. C</addtitle><date>2021-09-30</date><risdate>2021</risdate><volume>125</volume><issue>38</issue><spage>20783</spage><epage>20790</epage><pages>20783-20790</pages><issn>1932-7447</issn><eissn>1932-7455</eissn><abstract>Designing and fabricating high-performance single-molecule diodes is always a great pursuit in the field of molecular electronics. For this aim, here, we theoretically design an organic molecule (designated as HSC11BIPY–CC–BIPY), which is composed of a π conjugated BIPY–CC–BIPY group (BIPY is the abbreviation of the 4-methyl-2,2′-bipyridyl group and −CC– stands for the ethynylene group) and a long alkyl chain (undecanethiol, abbreviated as HSC11). Then, the corresponding electronic transport properties of the HSC11BIPY–CC–BIPY molecule are investigated by using the nonequilibrium Green's function method in combination with the density functional theory. It is found that the proposed molecule manifests a significant rectifying effect and the rectification ratio is as large as 305 on a Ag electrode and is about 3.4 times larger than that of its analogue previously reported, for which the BIPY–CC–BIPY group is replaced by a BIPY group instead. More interestingly, when the Ag electrodes are changed to Pt electrodes, the rectification ratio is dramatically improved to 6 orders of magnitude and reaches 8.26 × 106. Detailed analysis reveals that when the BIPY group is replaced by the BIPY–CC–BIPY group, there is a significant increase in the number of available channels for tunneling electrons in the proximity of Fermi energy (E F). Also, these electron tunneling channels get much closer to E F on the Pt electrode than that on the Ag electrode, induced by a stronger coupling strength between the molecule and Pt electrode, which leads to a boost in the rectification performance. This work demonstrates the importance and feasibility of the strategy for designing high-performance σ–π-type single-molecule diodes by optimizing the conjugated terminal group and the metal electrode.</abstract><pub>American Chemical Society</pub><doi>10.1021/acs.jpcc.1c04093</doi><orcidid>https://orcid.org/0000-0001-7928-4146</orcidid></addata></record>
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title Large Rectification Ratio of up to 106 for Conjugation-Group-Terminated Undecanethiolate Single-Molecule Diodes on Pt Electrodes
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