A steel-assisted polyol method has been proposed for the preparation of Ag nanowires (AgNWs) at high AgNO 3 concentrations of up to 0.5 M. The average diameter of products could be adjusted from approximately 100 to 300 nm by increasing the synthetic concentration. It was found that in situ nitric acidic etching was a fatal factor for the stability of the multiply twinned particles (MTPs), which were the seeds of AgNWs in the polyol synthesis system. The introduction of stainless steel could effectively consume the in situ generated nitric acid through a corrosion reaction between them, hence enabling the survival of MTPs for the consequent growth of AgNWs.
We have designed and fabricated a directed logic architecture consisting of two silicon microring resonators that can perform XOR and XNOR operations. The microring resonators are modulated through thermo-optic effect. Two electrical modulating signals applied to the microring resonators represent the two operands of the logical operation. The logical function is evaluated through the directed propagation of light in the device, and the result is represented by the output optical signal. Both XOR and XNOR operations at 20 kbits are demonstrated.
Novel Ag-doped TiO(2) perpendicular nanosheet films were synthesized by a mild solvothermal method. The width of TiO(2) nanosheets was facilely tuned by controlling reaction time, and furthermore the pattern of TiO(2) nanosheets was easily obtained via predesigned seed layer. The antibacterial effects of Ag-TiO(2) thin films against Escherichia coli and Staphylococcus aureus were examined by film attachment method. The coating films showed excellent performance in killing bacteria under UV light. Moreover, the potent antimicrobial ability of the film was well-sustained even in the dark environment.
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