TY - JOUR
T1 - Ordered mesoporous carbon prepared from triblock copolymer/novolac composites
AU - Liu, Panbo
AU - Jiao, Jian
AU - Huang, Ying
PY - 2013/2
Y1 - 2013/2
N2 - Ordered mesoporous carbon is synthesized by the organic-organic self-assembly method with novolac as carbon precursor and two kinds of triblock copolymers (Pluronic F127 and P123) as template. The hexagonal structure and a worm-hole structure are observed by TEM. The carbonization temperature is determined by TG and FT-IR. Characterization of physical properties of mesoporous carbon is executed by N2 absorption-desorption isotherms and XRD. The mass ratios of carbon precursor/template affect the textural properties of mesoporous carbon. The mesoporous carbon with F127/PF of 1/1 has lager surface area (670 m2 g-1), pore size (3.2 nm), pore volume (0.40 cm3 g-1), smaller microporous surface area (368 m2 g-1) and wall thickness (3.7 nm) compare to that with F127/PF of 0.5/1 (576 m2 g-1, 2.7 nm, 0.29 cm 3 g-1, 409 m2 g-1 and 4.3 nm, respectively). The mesoporous carbon prepared by carbonization at high temperature (700 °C) exhibits lager surface area, lower pore size and pore volume than the corresponding one obtained at 500 °C. The structure and order of the resulting materials are notably affected with types of templates. The mesoporous carbon with P123 as template exhibits worm-hole structure compare to that with F127 as template with hexagonal structure. In general, the pore size of mesoporous carbon with novolac as precursor is smaller than that with resorcinol-formaldehyde as precursor.
AB - Ordered mesoporous carbon is synthesized by the organic-organic self-assembly method with novolac as carbon precursor and two kinds of triblock copolymers (Pluronic F127 and P123) as template. The hexagonal structure and a worm-hole structure are observed by TEM. The carbonization temperature is determined by TG and FT-IR. Characterization of physical properties of mesoporous carbon is executed by N2 absorption-desorption isotherms and XRD. The mass ratios of carbon precursor/template affect the textural properties of mesoporous carbon. The mesoporous carbon with F127/PF of 1/1 has lager surface area (670 m2 g-1), pore size (3.2 nm), pore volume (0.40 cm3 g-1), smaller microporous surface area (368 m2 g-1) and wall thickness (3.7 nm) compare to that with F127/PF of 0.5/1 (576 m2 g-1, 2.7 nm, 0.29 cm 3 g-1, 409 m2 g-1 and 4.3 nm, respectively). The mesoporous carbon prepared by carbonization at high temperature (700 °C) exhibits lager surface area, lower pore size and pore volume than the corresponding one obtained at 500 °C. The structure and order of the resulting materials are notably affected with types of templates. The mesoporous carbon with P123 as template exhibits worm-hole structure compare to that with F127 as template with hexagonal structure. In general, the pore size of mesoporous carbon with novolac as precursor is smaller than that with resorcinol-formaldehyde as precursor.
KW - Mesoporous material
KW - Novolac
KW - Self-assembly
KW - Triblock copolymer
UR - http://www.scopus.com/inward/record.url?scp=84872026831&partnerID=8YFLogxK
U2 - 10.1007/s10934-012-9579-9
DO - 10.1007/s10934-012-9579-9
M3 - 文章
AN - SCOPUS:84872026831
SN - 1380-2224
VL - 20
SP - 107
EP - 113
JO - Journal of Porous Materials
JF - Journal of Porous Materials
IS - 1
ER -