Cargando…

Modulation of Band Gaps toward Varying Conductivities in Heterometallic One-Dimensional Chains by Ligand Alteration and Third Metal Insertion

[Image: see text] A heterometallic one-dimensional (1-D) chain consisting of multiple kinds of metals, Rh, Pt, and Pd, with direct metal–metal bonds was successfully obtained by mixing a Rh dinuclear complex and Pt–Pd–Pt trinuclear complex. The Pt–Pd–Pt trinuclear complex can be reversibly one-elect...

Descripción completa

Detalles Bibliográficos
Autores principales: Uemura, Kazuhiro, Ito, Daiki, Pirillo, Jenny, Hijikata, Yuh, Saeki, Akinori
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7711699/
https://www.ncbi.nlm.nih.gov/pubmed/33283099
http://dx.doi.org/10.1021/acsomega.0c04317
_version_ 1783618204232318976
author Uemura, Kazuhiro
Ito, Daiki
Pirillo, Jenny
Hijikata, Yuh
Saeki, Akinori
author_facet Uemura, Kazuhiro
Ito, Daiki
Pirillo, Jenny
Hijikata, Yuh
Saeki, Akinori
author_sort Uemura, Kazuhiro
collection PubMed
description [Image: see text] A heterometallic one-dimensional (1-D) chain consisting of multiple kinds of metals, Rh, Pt, and Pd, with direct metal–metal bonds was successfully obtained by mixing a Rh dinuclear complex and Pt–Pd–Pt trinuclear complex. The Pt–Pd–Pt trinuclear complex can be reversibly one-electron-oxidized or -reduced, where the electron paramagnetic resonance spectrum of the one-electron-oxidized one shows an axially symmetric signal with hyperfine splitting by two Pt and Pd, indicating that an unpaired electron is delocalized to the d(z(2)) orbital of Pt–Pd–Pt. Utilized with the highest occupied molecular orbital and lowest unoccupied molecular orbital interaction at the d(z(2)) orbital, simple mixing of the Pt–Pd–Pt trinuclear complex and Rh dinuclear complex in adequate solvents afforded heterometallic 1-D chains, which are aligned as −Rh–Rh–Pt–Pd–Pt–. Several physical measurements revealed that the metal oxidation state is +2. Diffuse reflectance spectra and theoretical calculations show that heterometallic 1-D chains have σ-type conduction and valence bands where π*(Rh(2)) are lying between them, whose gaps become narrower than the prototype chains aligned as −Rh–Rh–Pt–Pt–Pt–Pt–. The narrower band gaps are induced by destabilization of the σ-type valence bands and accompanied by insertion of Pd ions because the d-orbital energy level of Pd is closer in value to Rh compared with Pt. Flash-photolysis time-resolved microwave conductivity measurements exhibited an increase in the product of charge carrier mobility and its generation efficiency (8.1 × 10(–5) to 4.6 × 10(–4) cm(2) V(–1) s(–1)) with narrowing the band gaps, suggesting that the better conductivity is attributed to shorter metal–metal distances in 1-D chains. These results imply the possibilities of controlling band gap with ligand modification and third metal insertion in heterometallic 1-D chains to show various conductivities.
format Online
Article
Text
id pubmed-7711699
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-77116992020-12-04 Modulation of Band Gaps toward Varying Conductivities in Heterometallic One-Dimensional Chains by Ligand Alteration and Third Metal Insertion Uemura, Kazuhiro Ito, Daiki Pirillo, Jenny Hijikata, Yuh Saeki, Akinori ACS Omega [Image: see text] A heterometallic one-dimensional (1-D) chain consisting of multiple kinds of metals, Rh, Pt, and Pd, with direct metal–metal bonds was successfully obtained by mixing a Rh dinuclear complex and Pt–Pd–Pt trinuclear complex. The Pt–Pd–Pt trinuclear complex can be reversibly one-electron-oxidized or -reduced, where the electron paramagnetic resonance spectrum of the one-electron-oxidized one shows an axially symmetric signal with hyperfine splitting by two Pt and Pd, indicating that an unpaired electron is delocalized to the d(z(2)) orbital of Pt–Pd–Pt. Utilized with the highest occupied molecular orbital and lowest unoccupied molecular orbital interaction at the d(z(2)) orbital, simple mixing of the Pt–Pd–Pt trinuclear complex and Rh dinuclear complex in adequate solvents afforded heterometallic 1-D chains, which are aligned as −Rh–Rh–Pt–Pd–Pt–. Several physical measurements revealed that the metal oxidation state is +2. Diffuse reflectance spectra and theoretical calculations show that heterometallic 1-D chains have σ-type conduction and valence bands where π*(Rh(2)) are lying between them, whose gaps become narrower than the prototype chains aligned as −Rh–Rh–Pt–Pt–Pt–Pt–. The narrower band gaps are induced by destabilization of the σ-type valence bands and accompanied by insertion of Pd ions because the d-orbital energy level of Pd is closer in value to Rh compared with Pt. Flash-photolysis time-resolved microwave conductivity measurements exhibited an increase in the product of charge carrier mobility and its generation efficiency (8.1 × 10(–5) to 4.6 × 10(–4) cm(2) V(–1) s(–1)) with narrowing the band gaps, suggesting that the better conductivity is attributed to shorter metal–metal distances in 1-D chains. These results imply the possibilities of controlling band gap with ligand modification and third metal insertion in heterometallic 1-D chains to show various conductivities. American Chemical Society 2020-11-13 /pmc/articles/PMC7711699/ /pubmed/33283099 http://dx.doi.org/10.1021/acsomega.0c04317 Text en © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Uemura, Kazuhiro
Ito, Daiki
Pirillo, Jenny
Hijikata, Yuh
Saeki, Akinori
Modulation of Band Gaps toward Varying Conductivities in Heterometallic One-Dimensional Chains by Ligand Alteration and Third Metal Insertion
title Modulation of Band Gaps toward Varying Conductivities in Heterometallic One-Dimensional Chains by Ligand Alteration and Third Metal Insertion
title_full Modulation of Band Gaps toward Varying Conductivities in Heterometallic One-Dimensional Chains by Ligand Alteration and Third Metal Insertion
title_fullStr Modulation of Band Gaps toward Varying Conductivities in Heterometallic One-Dimensional Chains by Ligand Alteration and Third Metal Insertion
title_full_unstemmed Modulation of Band Gaps toward Varying Conductivities in Heterometallic One-Dimensional Chains by Ligand Alteration and Third Metal Insertion
title_short Modulation of Band Gaps toward Varying Conductivities in Heterometallic One-Dimensional Chains by Ligand Alteration and Third Metal Insertion
title_sort modulation of band gaps toward varying conductivities in heterometallic one-dimensional chains by ligand alteration and third metal insertion
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7711699/
https://www.ncbi.nlm.nih.gov/pubmed/33283099
http://dx.doi.org/10.1021/acsomega.0c04317
work_keys_str_mv AT uemurakazuhiro modulationofbandgapstowardvaryingconductivitiesinheterometalliconedimensionalchainsbyligandalterationandthirdmetalinsertion
AT itodaiki modulationofbandgapstowardvaryingconductivitiesinheterometalliconedimensionalchainsbyligandalterationandthirdmetalinsertion
AT pirillojenny modulationofbandgapstowardvaryingconductivitiesinheterometalliconedimensionalchainsbyligandalterationandthirdmetalinsertion
AT hijikatayuh modulationofbandgapstowardvaryingconductivitiesinheterometalliconedimensionalchainsbyligandalterationandthirdmetalinsertion
AT saekiakinori modulationofbandgapstowardvaryingconductivitiesinheterometalliconedimensionalchainsbyligandalterationandthirdmetalinsertion