visual
visual

세미나

  • HOME
  • >
  • 소식
  • >
  • 세미나
날짜 2016-09-21 16:00 
연사  
장소 E6-2. #2502(2nd fl.) 

Entanglement probe of two-impurity Kondo physics

 

4pm, Sep. 21 (Wed.), E6-2. #2502(2nd fl.)
Dr. Henrik Johannesson , University of Gothenburg (Sweden) and Beijing Computational Science Research Center (China)


The two-impurity Kondo model has bearings on a number of topical problems, from heavy-fermion physics to spin-based quantum computing. In this talk I will review what is known about the model and also present a novel approach to its study, initiated in a collaboration with A. Bayat, S. Bose, and P. Sodano [1]. Specifically, we propose that real-space properties of the model can be obtained from an effective spin model where two single-impurity Kondo spin chains are joined via an RKKY interaction between the two impurity spins. We then use the Density Matrix Renormalization Group (DMRG) to study its features, using two complementary quantum-entanglement measures, the negativity and the von Neumann entropy. This nonperturbative approach enables us to uncover the Kondo screening cloud and its enhancement in the limit of large ferromagnetic RKKY coupling, thus corroborating a long-standing conjecture of ”Kondo resonance narrowing" for effectively large impurity spins. In a follow-up work [2], we extended our approach to study the entanglement spectrum of the model, and obtained the Schmidt gap, i.e. the difference between the two largest eigenvalues of the reduced density matrix. The Schmidt gap is found to signal the quantum phase transition between the Kondo and RKKY phases, in effect serving as an order parameter, correctly predicting the known scaling exponent for the Kondo crossover length at the critical point. Time permitting, I will briefly discuss also some more recent applications of our approach, to the study of local quantum quenches [3], the entanglement structure of the two-channel Kondo model [4], and impurity quantum thermodynamics [5].

 

[1] A. Bayat et al., Phys. Rev. Lett. 109, 066403 (2012)
[2] A. Bayat et al., Nat. Comm. 5, 3784 (2014)
[3] A. Bayat et al., Phys. Rev. B 92, 155141 (2015)
[4] B. Alkurtass et al., Phys. Rev. B 93, 081106(R) (2016)
[5] A. Bayat et al., Phys. Rev. B 93, 201106(R) (2016)

Contact: Heung Sun Sim, Physics Dept., (hs_sim@kaist.ac.kr)

번호 날짜 연사 제목
공지 2025-02-24 16:00    2025년 봄학기 콜로키움 안내
공지 2025-02-27 16:00    2025년 봄 물리학과 특별세미나 (광학/응집물리 분야)
110 2016-11-18 10:30    Non-equilibrium many-body spin dynamics in diamond
109 2016-11-16 16:00    Realizing Haldane Model in Fe-based Honeycomb Ferromagnetic Insulators
108 2016-11-11 16:00    Dirac fermions in condensed matters
107 2016-11-11 13:30    Bandgap Engineering of Black Phosphorus
106 2016-11-10 16:00    Low Dimensional Active Plasmonics and Electron Optics in Graphene
105 2016-11-1 10:30    Time scale dependent dynamics in InAs/InP quantum dot gain media
104 2016-11-04 15:00    Quantum information experiments using few electron spins in semiconductors
103 2016-11-04 13:30    Exotic phenomena at oxide LaAlO3/SrTiO3 hetero-interface and their applications
102 2016-11-01 14:30    Search for dark sector particles in the B-factory experiments
101 2016-10-27 16:00    Terahertz Metal Optics
100 2016-10-18 15:00    “Hybrid quantum systems with mechanical oscillators”
99 2016-10-18 13:30    "Visualization of oxygen vacancy in motion and the interplay with electronic conduction"
98 2016-10-17 11:00    IMS and examples of the studies on optoelectronic materials
97 2016-10-07 16:00    “Tilt engineering of 4d and 5d transition metal oxides?”
96 2016-10-07 13:30    “Symmetry and topology in transition metal dichalcogenide?”
95 2016-09-29 16:00    Exploring the phase diagram of BaBiO3: epic voyage of just another bad trip?
94 2016-09-29 16:00    Large-scale Silicon Photonic MEMS Switches
93 2016-09-29 16:00    2016 Fall, Physics Seminar Serises file
92 2016-09-22 15:30    Polarized 3He, Polarized Neutrons and New Interactions beyond the Standard Model
91 2016-09-22 15:30    Polarized 3He, Polarized Neutrons and New Interactions beyond the Standard Model