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Junho Seo

Pohang University of Science and Technology · 物理学・天文学

研究室紹介

Professor Junho Seo's research lab specializes in quantum nanomechanics, quantum sensing, and 2D quantum materials, with a focus on exploring quantum phenomena in nanoscale systems. The lab develops advanced superconducting and electromechanical devices to achieve back-action evading measurements, quantum-limited detection, and parametric amplification, enabling ultra-sensitive sensing and the generation of squeezed states. It also investigates intrinsic magnetic order in van der Waals materials, particularly metallic 2D magnets, to advance next-generation spintronic and quantum information technologies. The integration of quantum control with nanomechanical and magnetic systems lies at the heart of the lab’s interdisciplinary approach.

quantum nanomechanicsback-action evasion2D magnetssuperconducting devicesquantum sensing

Research Overview

Papers
117
Total Citations
3,362
Papers (5y)
35
Primary Field
物理学・天文学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
35total
2022
2023
2024
2025
2026
Citations per year (5y)
233total
20222023202420252026

Selected Papers

15
1
Article|315 citations·2020
Nearly room temperature ferromagnetism in a magnetic metal-rich van der Waals metal
Junho Seo, Duck Young Kim, Eun Su An, Kyoo Kim, Gi‐Yeop Kim, Soo-Yoon Hwang, Dongwook Kim, Bo Gyu Jang, Hee‐Jung Kim, Gyeongsik Eom, Seung Young Seo, Roland Stania
SJR Q1Science AdvancesOA

A theoretically designed van der Waals ferromagnet Fe 4 GeTe 2 is synthesized and shows the nearly room temperature ferromagnetism.

Materials ChemistryMaterials Science
2
Article|150 citations·2014
Mechanically detecting and avoiding the quantum fluctuations of a microwave field
Junho Suh, Aaron Weinstein, Chan U Lei, Emma E. Wollman, Steven Steinke, Pierre Meystre, Aashish A. Clerk, Keith Schwab
SJR Q1ScienceOA

Quantum fluctuations of the light field used for continuous position detection produce stochastic back-action forces and ultimately limit the sensitivity. To overcome this limit, the back-action forces can be avoided by giving up complete knowledge of the motion, and these types of measurements are called "back-action evading" or "quantum nondemolition" detection. We present continuous two-tone back-action evading measurements with a superconducting electromechanical device, realizing three long

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
3
Article|82 citations·2021
Colossal angular magnetoresistance in ferrimagnetic nodal-line semiconductors
Junho Seo, Chandan De, Hyunsoo Ha, Ji Eun Lee, Sun-Gyu Park, Joonbum Park, Y. Skourski, Eun Sang Choi, Bongjae Kim, Gil Young Cho, Han Woong Yeom, Sang‐Wook Cheong
SJR Q1Nature
Atomic and Molecular Physics, and OpticsPhysics and Astronomy
4
Article|77 citations·2010
Parametric Amplification and Back-Action Noise Squeezing by a Qubit-Coupled Nanoresonator
Junho Suh, Matthew LaHaye, P. M. Echternach, Keith Schwab, M. L. Roukes
SJR Q1Nano Letters

We demonstrate the parametric amplification and noise squeezing of nanomechanical motion utilizing dispersive coupling to a Cooper-pair box qubit. By modulating the qubit bias and resulting mechanical resonance shift, we achieve gain of 30 dB and noise squeezing of 4 dB. This qubit-mediated effect is 3000 times more effective than that resulting from the weak nonlinearity of capacitance to a nearby electrode. This technique may be used to prepare nanomechanical squeezed states.

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
5
Article|65 citations·2021
Tunable high-temperature itinerant antiferromagnetism in a van der Waals magnet
Junho Seo, Eun Su An, Taesu Park, Soo-Yoon Hwang, Gi‐Yeop Kim, Kyung Song, Woo‐Suk Noh, J. Y. Kim, Gyu Seung Choi, Minhyuk Choi, Eunseok Oh, Kenji Watanabe
SJR Q1Nature CommunicationsOA

Abstract Discovery of two dimensional (2D) magnets, showing intrinsic ferromagnetic (FM) or antiferromagnetic (AFM) orders, has accelerated development of novel 2D spintronics, in which all the key components are made of van der Waals (vdW) materials and their heterostructures. High-performing and energy-efficient spin functionalities have been proposed, often relying on current-driven manipulation and detection of the spin states. In this regard, metallic vdW magnets are expected to have severa

Materials ChemistryMaterials Science
6
Article|35 citations·2007
Radio Frequency Thermal Plasma Treatment for Size Reduction and Spheroidization of Glass Powders Used in Ceramic Electronic Devices
Jun Ho Seo, Dong Uk Kim, Jun Seok Nam, Sang Hee Hong, Sung Bum Sohn, Soon Mo Song
SJR Q1Journal of the American Ceramic Society

Radio frequency (RF) thermal plasma treatment is studied for the size reduction and the spheroidization of coarse glass particles to change them into submicrometer‐sized powders of spherical shape. Such ultra‐fine spherical powders are the key ingredients of a sintering aid to achieve efficient package and high performance in ceramic electronic applications. The coarse glass powders injected into the high‐temperature RF thermal plasma undergo rapid heating, melting, and evaporation, followed by

Ceramics and CompositesMaterials Science
7
Article|30 citations·2012
Thermally Induced Parametric Instability in a Back-Action Evading Measurement of a Micromechanical Quadrature near the Zero-Point Level
Junho Suh, Matthew D. Shaw, H. G. LeDuc, Aaron Weinstein, Keith Schwab
SJR Q1Nano Letters

We report the results of back-action evading experiments utilizing a tightly coupled electro-mechanical system formed by a radio frequency micromechanical resonator parametrically coupled to a NbTiN superconducting microwave resonator. Due to excess dissipation in the microwave resonator, we observe a parametric instability induced by a thermal shift of the mechanical resonance frequency. In light of these measurements, we discuss the constraints on microwave dissipation needed to perform BAE me

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
8
Article|27 citations·2013
Optomechanical effects of two-level systems in a back-action evading measurement of micro-mechanical motion
Junho Suh, Aaron Weinstein, Keith Schwab
SJR Q1Applied Physics LettersOA

We show that the two-level systems (TLS) in lithographic superconducting circuits act as a power-dependent dielectric leading to non-linear responses in a parametrically coupled electromechanical system. Driven TLS shift the microwave resonance frequency and modulate the mechanical resonance through the optical spring effect. By pumping with two tones in a back-action evading measurement, these effects produce a mechanical parametric instability which limits single quadrature imprecision to 1.4

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
9
Article|16 citations·2022
On-Chip Microwave Frequency Combs in a Superconducting Nanoelectromechanical Device
Junghyun Shin, Younghun Ryu, Mohammad‐Ali Miri, Seung‐Bo Shim, Hyoungsoon Choi, Andrea Alù, Junho Suh, Jinwoong Cha
SJR Q1Nano Letters

Nanomechanical resonances coupled to microwave cavities can be excited, measured, and controlled simultaneously using electromechanical back-action phenomena. Examples of these effects include sideband cooling and amplification, which are commonly described through linear equations of motion governed by an effective optomechanical Hamiltonian. However, this linear approximation is invalid when the pump-induced cavity microwave field is large enough to trigger optomechanical nonlinearities, resul

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
10
Article|15 citations·2024
Promotional effect of WO3 in V2O5–WO3/TiO2 on low-temperature activity in the catalytic oxidation of 1,2-dichloroethane
Hyeongdong Jung, Yong Hyun Lim, Amol Pophali, Eunwon Lee, Hyung Joo Kim, Hyung Joo Kim, Hyun Sub Kim, Hyun Sub Kim, Junho Suh, Jae‐Soon Choi, Sangjin Kim, Jungup Bang
SJR Q1Chemical Engineering Journal
CatalysisChemical Engineering
11
Article|7 citations·2008
Influence of DC arc jets on flow fields analyzed by an integrated numerical model for a DC–RF hybrid plasma
Jun Ho Seo, Jin Myung Park, Sang Hee Hong
SJR Q2Plasma Sources Science and Technology

The influence of DC arc jets on the flow fields in a hybrid plasma torch is numerically analyzed by an integrated direct current–radio frequency (DC–RF) plasma model based on magneto-hydrodynamic formulations. The calculated results reveal that the increase in DC arc gas flow rate raises the axial flow velocity along the central column of the DC–RF hybrid plasma together with the enhanced backflow streams in the peripheral wall region. The temperature profiles on the torch exit plane are little

Electrical and Electronic EngineeringEngineering
12
Article|6 citations·2019
Quantum transport properties of single-crystalline Ag2Se0.5Te0.5 nanowires as a new topological material
Minjin Kim, Jihwan Kim, In‐Ho Lee, Woo Hyun Han, Yun Chang Park, Woo Youn Kim, Bongsoo Kim, Junho Suh
SJR Q1Nanoscale

We report a ternary silver chalcogenide, Ag2Se0.5Te0.5, as a new topological material with improved quantum transport properties. Single-crystalline nanostructures of ternary silver chalcogenides Ag2SexTe1-x are synthesized with a tunable chemical composition via the chemical vapor transport method. Quantum transport studies reveal that Ag2Se0.5Te0.5 nanowires present topological surface states with higher electron mobility and longer mean free path compared to binary Ag-chalcogenides. First-pri

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
13
Article|6 citations·2023
Promotional effect of Co cations on the catalytic activity of Co/ZSM-5 in 1,2-dichloroethane dehydrochlorination for the production of vinyl chloride monomer
Hyeongdong Jung, Hwangho Lee, Yong Hyun Lim, Kihun Nam, Tae Hyeop Kim, Junho Suh, Jae‐Soon Choi, Sang-Jin Kim, Jungup Bang, Do Heui Kim, Jungup Bang, Do Heui Kim
SJR Q2Applied Catalysis A General
Materials ChemistryMaterials Science
14
Article|4 citations·2021
Superconducting Nanoelectromechanical Transducer Resilient to Magnetic Fields
Jinwoong Cha, Hakseong Kim, Jihwan Kim, Seung‐Bo Shim, Junho Suh
SJR Q1Nano Letters

Nanoscale electromechanical coupling provides a unique route toward control of mechanical motions and microwave fields in superconducting cavity electromechanical devices. However, conventional devices composed of aluminum have presented severe constraints on their operating conditions due to the low superconducting critical temperature (1.2 K) and magnetic field (0.01 T) of aluminum. To enhance their potential in device applications, we fabricate a superconducting electromechanical device emplo

Atomic and Molecular Physics, and OpticsPhysics and Astronomy
15
Article|3 citations·2009
Effect of a surface pre-treatment on graphene growth using a SiC substrate
Junho Seo, Byung-Jin Kang, Jeong Hun Mun, Sung Kyu Lim, Byung Jin Cho
SJR Q2Microelectronic Engineering
Materials ChemistryMaterials Science

Research Areas

Atomic and Molecular Physics, and OpticsMaterials ChemistryElectrical and Electronic EngineeringAerospace EngineeringCondensed Matter PhysicsBiomedical Engineering

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