Enlightening of the low-dimensional high-TC superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化]

Electron-phonon interaction that couples the carriers for the Bose-Einstein condensation and the nature and configuration of the O-Cu chains and O-Cu planes that accommodate carriers are key issues to the cuprite high-TC superconductivity discovered in 1986. However, the new kind of high-TC supercon...

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Main Author: Sun, Chang Qing
Other Authors: School of Electrical and Electronic Engineering
Format: Article
Language:Chinese
Published: 2022
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Online Access:https://hdl.handle.net/10356/163877
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Institution: Nanyang Technological University
Language: Chinese
id sg-ntu-dr.10356-163877
record_format dspace
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language Chinese
topic Engineering::Electrical and electronic engineering
Bond Contraction
Cooperative Relaxation
spellingShingle Engineering::Electrical and electronic engineering
Bond Contraction
Cooperative Relaxation
Sun, Chang Qing
Enlightening of the low-dimensional high-TC superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化]
description Electron-phonon interaction that couples the carriers for the Bose-Einstein condensation and the nature and configuration of the O-Cu chains and O-Cu planes that accommodate carriers are key issues to the cuprite high-TC superconductivity discovered in 1986. However, the new kind of high-TC superconductivity is beyond the description of the conventional Bardeen-Cooper-Schrieffer (BCS) theory. Here we address these two issues based on the bond order-length-strength correlation and nonbonding electron polarization (BOLS-NEP) notion for the effect of atomic undercoordination and the hydrogen bond (O:H-O equivalent of O:Cu-O) cooperativity and polarizability (HBCP) premise for water ice with involvement of electron lone pairs ":" interactions. First, a Cup:O:Cup dipolar chain is formed by connecting a series of tetrahedrons made of two Cu+ ions and two Cup dipoles surrounding the center O2-. The O-Cu(110) plane includes three sublayers. The first one is made of alternative rows of Cu0 vacancies and the Cup:O:Cup dipolar chain with dipoles pointing out the surface; the second sublayer is formed by O2- whose lone pairs polarize the dipoles and squeeze out the missing rows of Cu atoms, and the third sublayer is made of Cu+. However, the O-Cu(001) plane shows a different manner of the sublayers. The first sublayer is made of Cup, Cu0, and Cu2+, and the third sublayer of Cu+ and Cu. The O2- bonds to the Cu+ and polarizes the Cu to form the oppositely-coupled dipoles on the Cu(001) surface. The O-Cu bonding proceeds in four discrete stages: O2 bonds to one Cu to form the Cu2+-2O- and then each O- bonds to its neighboring Cu in the second layer to form the twin tetrahedron with the production of the lone pairs. The introduction of O to Cu host creates valence density features of the O-Cu bonding, lone pair nonbonding, the dipolar antibonding above EF, and electron holes. Second, atomic undercoordination of the O-Cu chains and the O-Cu planes shortens and stiffens the local O-Cu bond and lengthens and weakens the O:Cup nonbonding interactions associated with further enhancement of the Cup dipoles polarization, this process is the same as the O:H-O bond relaxation and polarization occurred to the skins of water and ice. Last, the electronphonon interaction is realized by the undercoordination-induced bond relaxation and the dual polarization by lone pairs and bond contraction. The dual polarization weakens the O:Cup interactions and lowers the vibration frequency of the Cup, reducing the effective mass of the CuP electrons with high group velocity for carrier transport between the adjacent O-Cu planes that are made of atomic vacancies and dipoles. The self-entrapment of the core and bonding electrons, and the localized polarization and O:Cup weakening may describe the effect of electron-phonon coupling. The discovered "attraction force" between electrons along the Cu-O chain may fingerprint the effect of atomic undercoordination-induced bond contraction. The understandings of the dual polarization by oxidation and atomic undercoordination of carriers and the electron-phonon interaction may extend to devising the low-dimensional high-TC superconductivity and the edge states polarization for the topological insulator superconductivity. The BOLS-NEP and HBCP regulations could be essential ingredients for the carrier generation and their interactions, which shall play certain substantial roles in the new types of superconductivity.
author2 School of Electrical and Electronic Engineering
author_facet School of Electrical and Electronic Engineering
Sun, Chang Qing
format Article
author Sun, Chang Qing
author_sort Sun, Chang Qing
title Enlightening of the low-dimensional high-TC superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化]
title_short Enlightening of the low-dimensional high-TC superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化]
title_full Enlightening of the low-dimensional high-TC superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化]
title_fullStr Enlightening of the low-dimensional high-TC superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化]
title_full_unstemmed Enlightening of the low-dimensional high-TC superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化]
title_sort enlightening of the low-dimensional high-tc superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化]
publishDate 2022
url https://hdl.handle.net/10356/163877
_version_ 1753801183201329152
spelling sg-ntu-dr.10356-1638772022-12-21T02:11:42Z Enlightening of the low-dimensional high-TC superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化] Sun, Chang Qing School of Electrical and Electronic Engineering Engineering::Electrical and electronic engineering Bond Contraction Cooperative Relaxation Electron-phonon interaction that couples the carriers for the Bose-Einstein condensation and the nature and configuration of the O-Cu chains and O-Cu planes that accommodate carriers are key issues to the cuprite high-TC superconductivity discovered in 1986. However, the new kind of high-TC superconductivity is beyond the description of the conventional Bardeen-Cooper-Schrieffer (BCS) theory. Here we address these two issues based on the bond order-length-strength correlation and nonbonding electron polarization (BOLS-NEP) notion for the effect of atomic undercoordination and the hydrogen bond (O:H-O equivalent of O:Cu-O) cooperativity and polarizability (HBCP) premise for water ice with involvement of electron lone pairs ":" interactions. First, a Cup:O:Cup dipolar chain is formed by connecting a series of tetrahedrons made of two Cu+ ions and two Cup dipoles surrounding the center O2-. The O-Cu(110) plane includes three sublayers. The first one is made of alternative rows of Cu0 vacancies and the Cup:O:Cup dipolar chain with dipoles pointing out the surface; the second sublayer is formed by O2- whose lone pairs polarize the dipoles and squeeze out the missing rows of Cu atoms, and the third sublayer is made of Cu+. However, the O-Cu(001) plane shows a different manner of the sublayers. The first sublayer is made of Cup, Cu0, and Cu2+, and the third sublayer of Cu+ and Cu. The O2- bonds to the Cu+ and polarizes the Cu to form the oppositely-coupled dipoles on the Cu(001) surface. The O-Cu bonding proceeds in four discrete stages: O2 bonds to one Cu to form the Cu2+-2O- and then each O- bonds to its neighboring Cu in the second layer to form the twin tetrahedron with the production of the lone pairs. The introduction of O to Cu host creates valence density features of the O-Cu bonding, lone pair nonbonding, the dipolar antibonding above EF, and electron holes. Second, atomic undercoordination of the O-Cu chains and the O-Cu planes shortens and stiffens the local O-Cu bond and lengthens and weakens the O:Cup nonbonding interactions associated with further enhancement of the Cup dipoles polarization, this process is the same as the O:H-O bond relaxation and polarization occurred to the skins of water and ice. Last, the electronphonon interaction is realized by the undercoordination-induced bond relaxation and the dual polarization by lone pairs and bond contraction. The dual polarization weakens the O:Cup interactions and lowers the vibration frequency of the Cup, reducing the effective mass of the CuP electrons with high group velocity for carrier transport between the adjacent O-Cu planes that are made of atomic vacancies and dipoles. The self-entrapment of the core and bonding electrons, and the localized polarization and O:Cup weakening may describe the effect of electron-phonon coupling. The discovered "attraction force" between electrons along the Cu-O chain may fingerprint the effect of atomic undercoordination-induced bond contraction. The understandings of the dual polarization by oxidation and atomic undercoordination of carriers and the electron-phonon interaction may extend to devising the low-dimensional high-TC superconductivity and the edge states polarization for the topological insulator superconductivity. The BOLS-NEP and HBCP regulations could be essential ingredients for the carrier generation and their interactions, which shall play certain substantial roles in the new types of superconductivity. 感谢国家自然科学基金(21875024)资助. 2022-12-21T02:11:42Z 2022-12-21T02:11:42Z 2022 Journal Article Sun, C. Q. (2022). Enlightening of the low-dimensional high-TC superconductivity: bond contraction and electron dual polarization [低维高温超导的启示: 键收缩与电子双重极化]. Kexue Tongbao/Chinese Science Bulletin, 67(2), 113-117. https://dx.doi.org/10.1360/TB-2021-0993 0023-074X https://hdl.handle.net/10356/163877 10.1360/TB-2021-0993 2-s2.0-85123979964 2 67 113 117 zh Kexue Tongbao/Chinese Science Bulletin © 2022 Science China Press. All right reserved.