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Collective Excitations in the Antisymmetric Channel of Raman Spectroscopy

ISBN-13: 9783030893347 / Angielski / Miękka / 2022 / 151 str.

Hsiang-Hsi Kung
Collective Excitations in the Antisymmetric Channel of Raman Spectroscopy Hsiang-Hsi Kung 9783030893347 Springer - książkaWidoczna okładka, to zdjęcie poglądowe, a rzeczywista szata graficzna może różnić się od prezentowanej.

Collective Excitations in the Antisymmetric Channel of Raman Spectroscopy

ISBN-13: 9783030893347 / Angielski / Miękka / 2022 / 151 str.

Hsiang-Hsi Kung
cena 682,72
(netto: 650,21 VAT:  5%)

Najniższa cena z 30 dni: 655,41
Termin realizacji zamówienia:
ok. 22 dni roboczych
Dostawa w 2026 r.

Darmowa dostawa!
inne wydania

This thesis contains three breakthrough results in condensed matter physics. Firstly, broken reflection symmetry in the hidden-order phase of the heavy-fermion material URu2Si2 is observed for the first time. This represents a significant advance in the understanding of this enigmatic material which has long intrigued the condensed matter community due to its emergent long range order exhibited at low temperatures (the so-called “hidden order”). Secondly and thirdly, a novel collective mode (the chiral spin wave) and a novel composite particle (the chiral exciton) are discovered in the three dimensional topological insulator Bi2Se3. This opens up new avenues of possibility for the use of topological insulators in photonic, optoelectronic, and spintronic devices. These discoveries are facilitated by using low-temperature polarized Raman spectroscopy as a tool for identifying optically excited collective modes in strongly correlated electron systems and three-dimensional topological insulators.

This thesis contains three breakthrough results in condensed matter physics. Firstly, broken reflection symmetry in the hidden-order phase of the heavy-fermion material URu2Si2 is observed for the first time. This represents a significant advance in the understanding of this enigmatic material which has long intrigued the condensed matter community due to its emergent long range order exhibited at low temperatures (the so-called “hidden order”). Secondly and thirdly, a novel collective mode (the chiral spin wave) and a novel composite particle (the chiral exciton) are discovered in the three dimensional topological insulator Bi2Se3. This opens up new avenues of possibility for the use of topological insulators in photonic, optoelectronic, and spintronic devices. These discoveries are facilitated by using low-temperature polarized Raman spectroscopy as a tool for identifying optically excited collective modes in strongly correlated electron systems and three-dimensional topological insulators.  

Kategorie:
Nauka, Fizyka
Kategorie BISAC:
Technology & Engineering > Superconductors & Superconductivity
Science > Spectroscopy & Spectrum Analysis
Technology & Engineering > Materials Science - Electronic Materials
Wydawca:
Springer
Seria wydawnicza:
Springer Theses
Język:
Angielski
ISBN-13:
9783030893347
Rok wydania:
2022
Dostępne języki:
Numer serii:
000416125
Ilość stron:
151
Waga:
0.24 kg
Wymiary:
23.39 x 15.6 x 0.91
Oprawa:
Miękka
Dodatkowe informacje:
Wydanie ilustrowane

Chapter 1. Introduction.- Chapter 2. Experimental setup.- Chapter 3. Raman scattering in URu2Si2.- Chapter 4. Secondary emission in Bi2Se3.- Chapter 5. Conclusion.

Hsiang-Hsi (Sean) Kung is a postdoctoral researcher at the Quantum Matter Institute at the University of British Columbia. He received his PhD from Rutgers University in 2018.

This thesis contains three breakthrough results in condensed matter physics. Firstly, broken reflection symmetry in the hidden-order phase of the heavy-fermion material URu2Si2 is observed for the first time. This represents a significant advance in the understanding of this enigmatic material which has long intrigued the condensed matter community due to its emergent long range order exhibited at low temperatures (the so-called “hidden order”). Secondly and thirdly, a novel collective mode (the chiral spin wave) and a novel composite particle (the chiral exciton) are discovered in the three dimensional topological insulator Bi2Se3. This opens up new avenues of possibility for the use of topological insulators in photonic, optoelectronic, and spintronic devices. These discoveries are facilitated by using low-temperature polarized Raman spectroscopy as a tool for identifying optically excited collective modes in strongly correlated electron systems and three-dimensional topological insulators.  



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