Nam Hoon Kim
Chonbuk National University
400 Papers
928 Citations
Nam Hoon Kim is an academic researcher from Chonbuk National University. The author has contributed to research in topics: Graphene & Supercapacitor. The author has an hindex of 69, co-authored 321 publications. Previous affiliations of Nam Hoon Kim include Kansas State University & Center for Advanced Materials.
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Papers
Effects of hybrid carbon fillers of polymer composite bipolar plates on the performance of direct methanol fuel cells
TL;DR: In this article, the effects of carbon filler type on the properties and performance of composite bipolar plates fabricated by compression molding of carbon fillers such as graphite, carbon black (CB), multi-walled carbon nanotube (MWNT), carbon fiber (CF) and powder type epoxy have been investigated.
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Synergy effects of hybrid carbon system on properties of composite bipolar plates for fuel cells
TL;DR: In this paper, a hybrid carbon system of graphite powder and continuous carbon fibre fabric (CFF) is used for an epoxy composite to improve the electrical conductivity, mechanical properties and mouldability of a composite bipolar plate.
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Material selection windows for hybrid carbons/poly(phenylene sulfide) composite for bipolar plates of fuel cell
TL;DR: In this paper, the effects of hybrid carbon fillers on the physical properties of polymer composites for bipolar plates of fuel cells were investigated, where different types of conducting fillers such as fibrous and particulate fillers, or different sizes of fillers show synergistic effects on the flexural strength and electrical conductivities of the PPS-based composites.
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Highly efficient adsorbent based on novel cotton flower-like porous boron nitride for organic pollutant removal
TL;DR: In this article, a novel cotton flower-like hierarchically porous boron nitride (BN) structure was successfully synthesized by pyrolizing a boric acid/melamine mixture at 1100°C in a controlled flow rate ratio of N 2 /H 2.
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Hyperbranched poly(benzimidazole-co-benzene) with honeycomb structure as a membrane for high-temperature proton-exchange membrane fuel cells
TL;DR: In this article, a hyperbranched poly(benzimidazole-co-benzene) with a honeycomb structure is synthesized by condensation polymerization of trimesic acid (TMA) and 3,3′-diaminobenzidine (DAB) for use as a membrane high-temperature proton exchange membrane fuel cells (HT-PEMFCs).
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