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Surface Properties of Synthesized Nanoporous Carbon and Silica Matrices
Published on: March 27, 2019
Directed Construction of Hierarchical Porous Carbon With Ultrahigh Surface Area for High-Density Methane Storage at
Yuqing Sun1, Hongyi Wu2, Yuxiang Yan1
1National Laboratory of Solid-State Microstructures and School of Physics, Nanjing University, Nanjing, China.
Abstract:
Efficient methane storage remains a fundamental challenge for the deployment of adsorbed natural gas technologies, owing to the long-standing difficulty of simultaneously achieving high gravimetric and volumetric storage capacities. Here, we report a directed materials-design strategy that links molecular precursor topology to defect evolution and hierarchical pore formation in porous carbons. By exploiting the distinct pyrolytic topologies of cyanide-based ionic liquid anions, we program defect densities in carbon frameworks and guide the development of micro-mesoporous architectures through chemical activation. This approach yields a hierarchical porous carbon with an ultrahigh Brunauer-Emmett-Teller area of 5011 m2 g-1 and a physically accessible pore volume of 2.48 cm3 g-1 as determined by skeletal density and tap density measurements, enabling exceptional methane storage performance at room temperature. At 298 K and 100 bar, this material achieves a gravimetric adsorption capacity of 0.48 g g-1. Accordingly, its volumetric adsorption capacity reaches 228 cm3 (Standard temperture and pressure, STP) cm-3 at a tap density of 0.337 g cm-3 and 275 cm3 (STP) cm-3 at a compacted density of 0.407 g cm-3. Beyond methane storage, our findings establish a generalizable paradigm for constructing high-performance porous carbons by topologically programming defects and pore hierarchies, with implications for energy storage and gas adsorption technologies.
