Abstract:
Disclosed are a high crystalline TIOF2 and a method of preparing the same. According to the present invention, the method of preparing a high crystalline TIOF2 includes: a first step (1) of preparing a titanium dioxide precursor solution by mixing an alcohol and a titanium dioxide precursor; a second step (2) of adjusting a pH by adding an acid to a solution obtained through the first step; a third step (3) of gelling a mixture solution obtained through the second step; and a fourth step (4) of preparing TIOF2 by settling a resultant mixture obtained through the third step in a reactor and injecting a nitrogen trifluoride to the reactor to react with the resultant mixture. The present invention can provide a high crystalline TIOF2 with a uniform shape in a nano-size by even a simple process.
Abstract:
폴리아크릴로니트릴계 중공사 분리막의 표면을 개질시키는 방법이 개시된다. 본 발명에 따른 폴리아크릴로니트릴계 중공사 분리막의 표면 개질 방법은, (1) 폴리아크릴로니트릴계 중공사 분리막을 반응기에 장착시키고, 대기압 플라즈마 처리를 하는 단계; (2) 상기 '단계 (1)'의 과정을 거친 중공사 분리막에 산소가스를 반응시키는 단계; 및 (3) 상기 '단계 (2)'의 과정을 거친 중공사 분리막에 불소와 비활성 기체의 혼합가스를 반응시켜, 폴리아크릴로니트릴계 중공사 분리막의 표면을 친수성으로 개질시키는 단계;를 포함하여 이루어진다. 중공사 분리막, 폴리아크릴로니트릴계, 표면 개질, 플라즈마, 산소, 불소
Abstract:
PURPOSE: A method for manufacturing an electromagnetic wave shielding agent and an absorbent is provided to obtain porous nano silicon carbide with excellent oxidation resistance at high temperature and properties. CONSTITUTION: A method for manufacturing an electromagnetic wave shielding agent and an absorbent comprises the steps of: mixing polymer precursors and silicon compounds, or polymer precursors, silicon compounds and conductive carbon material, with a solvent; electrospinning the mixture; heat-treating the electrospinned product to prepare porous nano silicon carbide with excellent oxidation resistance at high temperature; and preparing an electromagnetic wave shielding agent and an absorbent using the porous nano silicon carbide.
Abstract:
PURPOSE: A method for manufacturing an electromagnetic wave shielding agent and an absorbent is provided to obtain porous nano silicon carbide with excellent oxidation resistance at high temperature and properties. CONSTITUTION: A method for manufacturing an electromagnetic wave shielding agent and an absorbent comprises the steps of: mixing polymer precursors and silicon compounds, or polymer precursors, silicon compounds and conductive carbon material, with a solvent; electrospinning the mixture; heat-treating the electrospinned product to prepare porous nano silicon carbide with excellent oxidation resistance at high temperature; and preparing an electromagnetic wave shielding agent and an absorbent using the porous nano silicon carbide.
Abstract:
PURPOSE: A producing method of an anatase titanium oxide optical catalyst, and the anatase titanium oxide optical catalyst are provided to activate an anatase titanium oxide by weak visible rays with the excellent light resolution ability. CONSTITUTION: A producing method of an anatase titanium oxide optical catalyst responsive to visible rays comprises the following steps: mixing an anatase titanium oxide with a monosaccharide material; adding a dehydrating agent into the mixture; dehydrating the mixture by heating; filtering the obtained product with water for removing foreign materials; drying the obtained product; and processing the product with fluorine.
Abstract:
PURPOSE: A surface modifying method of a polyacrylonitrile hollow fiber membrane is provided to prevent degradation of filtering performance for a long time and to improve good water separation performance. CONSTITUTION: A surface modifying method of a polyacrylonitrile hollow fiber membrane includes the following steps: processing atmospheric pressure plasma after mounting the polyacrylonitrile hollow fiber membrane to a reactor; reacting the hollow fiber membrane with oxygen gas; reacting mixed gas of inert gas and florin with the hollow fiber membrane; and modifying the surface of the polyacrylonitrile hollow fiber membrane to hydrophilic property. An atmospheric pressure plasma process is performed for 10 ~ 100 seconds.