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High-performance cellulosic filament fibers prepared via dry-jet wet spinning from ionic liquids, , , , , , and . Cellulose, 28 (5): 3055-3067 (2021)Carbon fibers prepared from tailored reversible‐addition‐fragmentation transfer copolymerization‐derived poly(acrylonitrile)‐co‐poly(methylmethacrylate), , , , , , and . Journal of Polymer Science Part A: Polymer Chemistry, 52 (9): 1322–1333 (February 2014)A synthetic glycerol assimilation pathway demonstrates biochemical constraints of cellular metabolism, , , , , , , and . FEBS Journal, 287 (1): 160-172 (2020)Preparation of C/C-SiC Composites from All-Cellulose Precursors, , , and . Macromolecular Materials and Engineering, 304 (4): 1800763 (2019)A new carbon precursor: synthesis and carbonization of triethylammonium-based poly(p-phenylenevinylene) (PPV) progenitors, , , , , , , and . J. Mater. Chem. A, 1 (42): 13154-13163 (2013)Chitin/cellulose blend fibers prepared by wet anddry-wetspinning, , , , , , and . Polymers for Advanced Technologies, 32 (1): 335-342 (2021)Cellulose-Derived Carbon Fibers with Improved Carbon Yield and Mechanical Properties, , , , , , and . Macromolecular materials and engineering, 302 (10): 1700195 (2017)Structure evolution in all-aromatic, poly(p-phenylene-vinylene)-derived carbon fibers, , , , , , , , , and . Carbon, (2019)Synthesis and dry-spinning fibers of sulfinyl-based poly(p-phenylene vinylene) (ppv) for semi-conductive textile applications, , , , , and . J. Mater. Chem., 22 (23): 11851-11860 (2012)Hollow carbon fibers with tailored porosity and rim-thickness, , , , , , , and . Carbon, (November 2013)