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Title: Mechanism of Hierarchical Porosity Formation in Silica Thin Films using Cellulose Nitrate

Journal Article · · Microporous and Mesoporous Materials

Ordered mesoporous silica thin films have potential applications as, e.g., sorbents, catalysts, and analytical instruments. In addition to high internal surface areas, these applications also require high permeability, which can be obtained by engineering hierarchical porosity into the film. A novel approach uses cellulose nitrate to generate a system of larger pores (15-30 nm dia.) connected by the smaller mesopores (2-10 nm dia.) generated using traditional organic surfactants. The unimolecular reaction for cellulose nitrate deflagration avoids the usual diffusion limitations of traditional combustion synthesis. A family of hierarchically porous films was produced using a range of surfactant mixtures, and exhibited a range of surface areas along with relatively impermeable ?skins? on the film free boundaries. These skins were formed by an extrusion mechanism due to pore expansion coupled with the lateral (in-plane) symmetry constraints unique to thin films. The skin thickness depends primarily on the ratio of the large pore spacing (l0) over its diameter (d). The specific surface area (SA, m2/g) of the film increases monotonically as l0/d decreases, reaching a maximum at about l0/d{approx}0.67. Precipitous reductions in SA for smaller values of l0/d are caused by pore intersections and the associated excluded surface areas. At high pore intersection (low l0/d), the film structure evolves from ''a solid with pores'' to ''pores surrounded by a cage-like silica matrix''. The cage-like film structure is less susceptible to thin film cracking behavior, but is probably in a more metastable state susceptible to thermal or hydrothermal exposure. This metastability might be mitigated by controlling the structure of the skin through several avenues, including processing conditions (e.g., drying rates or thermal schedules) and the sol-gel chemistry.

Research Organization:
Pacific Northwest National Lab. (PNNL), Richland, WA (United States). Environmental Molecular Sciences Lab. (EMSL)
Sponsoring Organization:
USDOE
DOE Contract Number:
AC05-76RL01830
OSTI ID:
876885
Report Number(s):
PNNL-SA-43308; 9798; TRN: US200608%%39
Journal Information:
Microporous and Mesoporous Materials, Vol. 84, Issue 1-3
Country of Publication:
United States
Language:
English