주요 논문
5
*2026년 기준 최근 6년 이내 논문에 한해 Impact Factor가 표기됩니다.
1
article
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인용수 47
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2025Defect engineering approaches for metal oxide semiconductor-based chemiresistive gas sensing
Amit Kumar, Julaiba Tahsina Mazumder, Kenza Joyen, Frèdéric Favier, Ali Mirzaei, Jin Young Kim, Monika Kwoka, Mikhaël Bechelany, Ravindra Kumar Jha, Mahesh Kumar, Hyoun Woo Kim, Sang Sub Kim
IF 23.5 (2025)
Coordination Chemistry Reviews
https://doi.org/10.1016/j.ccr.2025.216836
Chemistry
Semiconductor
Metal
Nanotechnology
Oxide
Optoelectronics
Organic chemistry
2
article
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인용수 3
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2025Microwave-irradiated WS /WO –graphene composites for high-performance NO detection
Sukhwinder Singh, Wansik Oum, Ka Yoon Shin, Sang Sub Kim, Hyoun Woo Kim
IF 13.2 (2025)
Chemical Engineering Journal
https://doi.org/10.1016/j.cej.2025.170681
Fabrication
Composite number
Heterojunction
Relative humidity
Humidity
Oxygen
Molecule
Chemical stability
Tungstate
3
article
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인용수 63
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2024MOF-derived metal oxide (Cu, Ni, Zn) gas sensors with excellent selectivity towards H2S, CO and H2 gases
Carmen Montoro, Jin Young Kim, Ali Mirzaei, Jae‐Hyoung Lee, Syreina Sayegh, Elissa Makhoul, Igor Iatsunskyi, Emerson Coy, Mikhaël Bechelany, Hyoun Woo Kim, Sang Sub Kim
IF 14.2 (2024)
Composites Part B Engineering
Metal-organic framework (MOF)-derived metal oxides blend the sensing properties of metal oxides with MOF porosity, enhancing gas sensing capabilities. In this study, M-MOFs (M = Cu, Ni and Zn) were synthesized and then calcined at different temperatures to obtain their corresponding metal oxides (CuO, NiO and ZnO). The synthesis method incorporated novel approaches to enhance sensor performance, such as optimizing calcination temperatures for improved selectivity. Structural and morphological analyses confirmed the high surface area and porosity of the metal oxide materials, facilitating efficient gas adsorption and promoting enhanced sensor response. Gas sensing studies revealed significantly enhanced performance of MOF-derived metal oxides over M-MOFs, strongly influenced by calcination temperature. Moreover, CuO, NiO and ZnO MOF-derived metal oxides showed improved selectivity towards H2S, CO and H2 gases, respectively. This study demonstrates that tuning MOF and calcination parameters can tailor sensor selectivity effectively.
https://doi.org/10.1016/j.compositesb.2024.111637
Selectivity
Metal
Oxide
Materials science
Chemical engineering
Inorganic chemistry
Chemistry
Metallurgy
Catalysis
Organic chemistry
4
article
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인용수 120
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2024Resistive Gas Sensors Based on 2D TMDs and MXenes
Ali Mirzaei, Jin‐Young Kim, Hyoun Woo Kim, Sang Sub Kim
IF 17.7 (2024)
Accounts of Chemical Research
). To overcome these drawbacks, several strategies can be employed to enhance their sensing properties. Noble-metal decoration such as (Au, Pt, Pd, Rh, Ag) is a highly promising method, in which the catalytic effects of noble metals as well as formation of potential barriers with MXenes or TMDs eventually contribute to boosted response. Additionally, bimetallic noble metals such as Pt-Pd and Au/Pd with their synergistic properties can further improve sensor performance. Ion implantation is another feasible approach, involving doping of sensing materials with the desired concentration of dopants through control over the energy and dosage of the irradiation ions as well as creation of structural defects such as oxygen vacancies through high-energy ion-beam irradiation, contributing to enhanced sensing capabilities. The formation of core-shell structures is also effective, creating numerous interfaces between core and shell materials that optimize the sensing characteristics. However, the shell thickness needs to be carefully optimized to achieve the best sensing output. To reduce energy consumption, sensors can operate in a self-heating condition where an external voltage is applied to the electrodes, significantly lowering the power requirements. This enables sensors to function in energy-constrained environments, such as remote or low-energy areas. An important advantage of 2D MXenes and TMDs is their high mechanical flexibility. Unlike semiconducting metal oxides that lack mechanical flexibility, MXenes and TMDs can maintain their sensing performance even when integrated onto flexible substrates and subjected to bending, tilting, or stretching. This flexibility makes them ideal for fabricating flexible and portable gas sensors that rigid sensors cannot achieve.
https://doi.org/10.1021/acs.accounts.4c00323
MXenes
Resistive touchscreen
Flexibility (engineering)
Materials science
Fabrication
Nanotechnology
Realization (probability)
Optoelectronics
Computer science
5
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인용수 108
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2024Nanoparticles anchored strategy to develop 2D MoS2 and MoSe2 based room temperature chemiresistive gas sensors
Suresh Kumar, Ali Mirzaei, Ashok Kumar, Myoung Hoon Lee, Zahra Ghahremani, Tae–Un Kim, Jin‐Young Kim, Monika Kwoka, Mahesh Kumar, Sang Sub Kim, Hyoun Woo Kim
IF 23.5 (2024)
Coordination Chemistry Reviews
https://doi.org/10.1016/j.ccr.2024.215657
Chemistry
Nanoparticle
Nanotechnology