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Results 291-300 of 349 (Search time: 0.004 seconds).

  • Beomjun Kim
  • 2025
  • Beomjun Kim. (2025). Laser-guided surface modification for high-capacity metallic anodes. doi: 10.22677/THESIS.200000847102
  • DGIST
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  • HyoJin Kim
  • 2024
  • HyoJin Kim. (2024). Exploring Polymorphic Crystal Structures of Li4SiS4 in All-Solid-State Batteries: Improving Ionic Conductivity with Aliovalent Sb Substitution. doi: 10.22677/THESIS.200000803227
  • DGIST
  • View : 144
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  • Hyerin Park
  • 2024
  • Hyerin Park. (2024). Ternary Eutectic Electrolytes for Lithium Metal Batteries. doi: 10.22677/THESIS.200000803769
  • DGIST
  • View : 118
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  • Kyu Seok Lee
  • 2024
  • Kyu Seok Lee. (2024). Synergistic Interface Engineering of Cocatalyst and Reduced 2D TiO2 for Efficient Photocatalytic CO2 to CH4 Conversion. doi: 10.22677/THESIS.200000802421
  • DGIST
  • View : 139
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  • Seolha Lim
  • 2024
  • Seolha Lim. (2024). Understanding the Reconstruction of Active Sites via Catalyst Surface Engineering for Electrochemical CO2 Conversion. doi: 10.22677/THESIS.200000800915
  • DGIST
  • View : 276
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  • Soyeon Lee
  • 2024
  • Soyeon Lee. (2024). Low viscous, highly conductive, ester-based high-concentration electrolyte for ultrafast charging Li-ion batteries. doi: 10.22677/THESIS.200000803726
  • DGIST
  • View : 161
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  • Seokbum Kang
  • 2025
  • Seokbum Kang. (2025). Sulfone-based crystalline organic electrolytes for safe, high energy density solid-state sodium and potassium batteries. doi: 10.22677/THESIS.200000828370
  • DGIST
  • View : 269
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  • Hyung Ryul You
  • 2025
  • Hyung Ryul You. (2025). Tailoring the electrical-physical properties of colloidal quantum dot optoelectronics via material engineering. doi: 10.22677/THESIS.200000848220
  • DGIST
  • View : 314
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  • Cheolhee Han
  • 2025
  • Cheolhee Han. (2025). Sulfone Electrolytes with Improved Thermal Stability for Lithium Ion Batteries. doi: 10.22677/THESIS.200000828382
  • DGIST
  • View : 265
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  • Taylor Derrick Allan
  • 2025
  • Taylor Derrick Allan. (2025). Tailoring Colloidal Quantum Dots Properties via Synthesis and Surface Engineering for Next-Generation Optoelectronic Applications. doi: 10.22677/THESIS.200000842818
  • DGIST
  • View : 326
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