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Our experiment results also show that these samples treated by this method exhibit superior activity for CO oxidation compared with original samples.
Moreover, SWCNT FETs fabricated by this method exhibit excellent electrical properties, such as Ion/Ioff ratio up to 105 and sub-threshold slope ∼130 mV/dec.
The low-density RF-aerogels synthesized by this method exhibit high surface areas, high porosities, and mesoporosity, which are beneficial to moisture diffusion and sensing reaction.
The two types of scaffolds produced by this method exhibit a typical fiber-mesh structure, with a fiber diameter of approximately 180 μm for SPCL and 210 μm for SPLA, with highly interconnected pores and a porosity of approximately 75%.
XRD pattern indicating that the Zn Nps synthesised by this method exhibit first-rate crystallinity and a high purity.
The films made by this method exhibit a high Raman signal due to the strong LSPR effect, which is produced in the narrow gap regions.
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Compared with conventional ZSM-5 catalyst, mesoporous ZSM-5 single crystals synthesized by this method exhibited significantly higher external surface area and larger mesopore volume than conventional one.
Cyclic voltammetry (CV) and chronoamperometry results demonstrated that the PtRu/MWCNT synthesized by this method exhibited a higher methanol oxidation current than did the PtRu/MWCNT synthesized by the more complex method using sodium borohydride as the reducing agent and tetraoctyl ammonium bromide as the stabilizer.
The hexagonal ZnO nanosheet films prepared by this method exhibited excellent PEC properties.
Meanwhile, the plate-like SAPO-34 catalysts synthesized by this method exhibited higher selectivity to light olefins and longer lifetime in methanol-to-olefins (MTO) reaction than the traditional cubic SAPO-34 catalyst.
Compared with the traditional cubic SAPO-34 molecular sieve, the plate-like SAPO-34 catalysts synthesized by this method exhibited high selectivity to light olefins (ethylene + propylene) and long lifetime in methanol-to-olefins (MTO) reaction.
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