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High-Temperature Pairing in Stripes

Oron Zachar

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Abstract

That the superconducting transition in underdoped high temperature superconductors is controlled by phase ordering, implies that pairing is a local phenomenon that occurs on an intermediate length scale, and typically at a temperature above T~.. The discovery of local stripe order in the LSCO family of high temperature superconductors, along with the theoretical suggestion that such structures are a general feature of doped antiferromagnets lead us further to propose that in fact pairing occurs in the vicinity of an individual stripe. The transition to a superconducting state then follows at lower temperature due tO Josephson coupling between stripes. In this paper we review our microscopic model of high temperature pairing on individual stripes.

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What this paper is about

That the superconducting transition in underdoped high temperature superconductors is controlled by phase ordering, implies that pairing is a local phenomenon that occurs on an intermediate length scale, and typically at a temperature above T~.. The discovery of local stripe order in the LSCO family of high temperature superconductors, along with the theoretical suggestion that such structures are a general feature of doped antiferromagnets lead us further to propose that in fact pairing occurs in the vicinity of an individual stripe. The transition to a superconducting state then follows at lower temperature due tO Josephson coupling between stripes. In this paper we review our microscopic model of high temperature pairing on individual stripes.

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Available abstract

That the superconducting transition in underdoped high temperature superconductors is controlled by phase ordering, implies that pairing is a local phenomenon that occurs on an intermediate length scale, and typically at a temperature above T~.. The discovery of local stripe order in the LSCO family of high temperature superconductors, along with the theoretical suggestion that such structures are a general feature of doped antiferromagnets lead us further to propose that in fact pairing occurs in the vicinity of an individual stripe. The transition to a superconducting state then follows at lower temperature due tO Josephson coupling between stripes. In this paper we review our microscopic model of high temperature pairing on individual stripes.

Key concepts: Pairing, Condensed matter physics, Superconductivity, High-temperature superconductivity, Transition temperature, Physics, Superconducting transition temperature, Coupling (piping)

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