A phase separation driven by the negative compressibility of the electron gas, near electronic topological transitions (ETT), could drive the system at the verge of a catastrophe. We show here that the metastable phases very close to the ETT transition are observed in a mesoscopic phase separation (MePhS) driven by the quenched lattice disorder. By using high resolution synchrotron radiation x-ray powder diffraction we have identified the MePhS for the intermetallic ternary Mg1-xAlxB2 in the proximity of two ETTs: the first at x1 = 0.1 and the second at x 2 = 0.3. We have identified the competition between a first 'relaxed' (R) hole poor and a second 'tense' (T) hole rich phase, and by micro-Raman we observe the splitting of the in-plane phonon E2g mode in the proximity of the first ETT at x = 0.1. The anisotropic quenched disorder due to a random distribution of Al3+ and Mg2+ ions both in the axial (c axis) direction and planar (ab plane) direction, probed by x-ray diffraction and Raman data, is proposed to be the physical variable that allows the formation of metastable phases near the critical points of electronic topological transitions, where Feshbach shape resonances in interband pairing amplifies the superconducting critical temperature. © 2008 IOP Publishing Ltd.

Palmisano, V., Simonelli, L., Puri, A., Fratini, M., Busby, Y., Parisiades, P., et al. (2008). Controlling mesoscopic phase separation near electronic topological transitions via quenched disorder in ternary diborides. JOURNAL OF PHYSICS. CONDENSED MATTER, 20(43), 434222-434232 [10.1088/0953-8984/20/43/434222].

Controlling mesoscopic phase separation near electronic topological transitions via quenched disorder in ternary diborides

Puri A.;
2008

Abstract

A phase separation driven by the negative compressibility of the electron gas, near electronic topological transitions (ETT), could drive the system at the verge of a catastrophe. We show here that the metastable phases very close to the ETT transition are observed in a mesoscopic phase separation (MePhS) driven by the quenched lattice disorder. By using high resolution synchrotron radiation x-ray powder diffraction we have identified the MePhS for the intermetallic ternary Mg1-xAlxB2 in the proximity of two ETTs: the first at x1 = 0.1 and the second at x 2 = 0.3. We have identified the competition between a first 'relaxed' (R) hole poor and a second 'tense' (T) hole rich phase, and by micro-Raman we observe the splitting of the in-plane phonon E2g mode in the proximity of the first ETT at x = 0.1. The anisotropic quenched disorder due to a random distribution of Al3+ and Mg2+ ions both in the axial (c axis) direction and planar (ab plane) direction, probed by x-ray diffraction and Raman data, is proposed to be the physical variable that allows the formation of metastable phases near the critical points of electronic topological transitions, where Feshbach shape resonances in interband pairing amplifies the superconducting critical temperature. © 2008 IOP Publishing Ltd.
2008
Palmisano, V., Simonelli, L., Puri, A., Fratini, M., Busby, Y., Parisiades, P., et al. (2008). Controlling mesoscopic phase separation near electronic topological transitions via quenched disorder in ternary diborides. JOURNAL OF PHYSICS. CONDENSED MATTER, 20(43), 434222-434232 [10.1088/0953-8984/20/43/434222].
Palmisano, V.; Simonelli, L.; Puri, A.; Fratini, M.; Busby, Y.; Parisiades, P.; Liarokapis, E.; Brunelli, M.; Fitch, A. N.; Bianconi, A.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1012919
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