기존의 바나듐 레독스 흐름전지(vanadium redox flow battery, VRFB)에서 사용하고 있는 과불소계이오노머인 나피 온(Nafion)은 전해질에 존재하는 바나듐 이온의 투과도가 높아, 바나듐 이온이 분리막을 투과하여 반대쪽 전해질로 교차 이동 하는 문제를 갖고 있다. VRFB에서 바나듐 이온의 투과는 서로 다른 산화수를 갖는 바나듐 이온이 부반응을 일으켜 충전, 방전 용량의 감소를 야기하고, 장기적인 성능 감소를 일으키는 원인이 된다. 이러한 문제를 해결하기 위해 본 연구에서는 SiO2에 3-aminopropyl group이 도입된 나노입자(fS)를 Nafion에 분산시켜 바나듐 이온의 투과를 감소시키고, VRFB의 장기적인 성능 의 향상을 도모하고자 하였다. SiO2에 붙어 있는 아민기(-NH2)가 Nafion의 술폰산 음이온(SO3 -)과 이온결합을 형성함과 동시 에, 암모늄 양이온(-NH3 +)의 양전하가 바나듐 이온에 대해 Gibbs-Donnan 효과를 나타내어 낼 것이라고 기대하였다. fS를 섞은 Nafion 용액의 pH와 Nafion-fS 막의 IEC 측정을 통해 암모늄 양이온과 술폰산 음이온의 이온결합이 존재하는 것을 확인하였고, fS의 양이 많아질수록 바나듐 이온의 투과도가 감소하는 것을 확인하였다. VRFB 단위 전지에 제조한 복합막을 도입하였을 때, 150 mA/cm2의 전류밀도에서 충방전 사이클을 200회 반복 진행하여도 방전용량을 최대 80%까지 유지할 수 있었다.
Cost-effective functional phosphor nanoparticles are prepared by introducing low-cost SiO2 spheres to rareearth phosphor (YVO4:Eu3+, YVO4:Er3+, and YVO4:Nd3+) shells using a sol-gel synthetic method. These functional nanoparticles are characterized by X-ray diffraction, X-ray photoelectron spectroscopy, transmission electron microscopy, and general photoluminescence spectra. The SiO2 sphere occupying the interior of the conventional phosphor is advantageous in significantly reducing the cost of expensive rare-earth phosphor nanoparticles. The sol-gel process facilitates the core–shell structure formation; the rare-earth shell phosphor has strong interactions with chelating agents on the surfaces of SiO2 nanoparticles and thus forms layers of several nanometers in thickness. The photoluminescence wavelength is simply tuned by replacing the active materials of Eu3+, Er3+, and Nd3+. Moreover, the photoluminescent properties of the core–shell nanoparticles can be optimized by manipulating the specific contents of active materials in the phosphors. Our simple approach substitutes low-cost SiO2 for expensive rare-earth-based phosphor materials to realize cost-effective phosphor nanoparticles for various applications.
Nanotechnology has become one of the fastest developing technologies and recently applied to a variety of industries. Thus, increasing number of nano materials including various nanoparticles would be discharged into wastewater and consequently entering a biological wastewater treatment process. However, the impact of the nano particles on biological wastewater treatment has not been estimated intensively. In this research, we investigated the effect of silica nanoparticle on the oxygen uptake rates (OURs) of activated sludge used in a conventional wastewater treatment process. The inhibition (%) values were estimated from the results of OURs experiments for the silica nanoparticles with various sizes of 10-15, 45-50, and 70-100 nm and concentrations of 50, 250, and 500 ppm. As results, the inhibition value was increased as the size of silica nano particles decreased and the injected concentration increased. The maximum inhibition value was investigated as 37.4 % for the silica nanoparticles with the size of 45-50 nm and concentration of 50 ppm. Additionally, the effect of size and concentration on the inhibition should be considered cautiously in case that the aggregation of particles occurred seriously so that the size of individual particles was increased in aquatic solution.
The magnetic ferrite nanoparticles were synthesized and coated by silica precursor in controlling the coating thicknesses and sizeses. The surface modification was performed with amino-functionalized organic silanes on silica coated magnetic nanoparticles. The use of functionalized self-assembled magnetic ferrite nanoparticles for nucleic acid separation process give a lot of advantages rather than the conventional silica based process.