Controllable synthesis method of nonmetallic ion-doped nano titanium dioxide by phase separation-hydrolysis solvothermal method
A technology of nano-titanium dioxide and solvothermal method, applied in chemical instruments and methods, catalyst activation/preparation, chemical/physical processes, etc., can solve the problems of low doping efficiency, complex process, poor universality, etc., and achieve strong light absorption , simple process and low equipment requirements
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specific Embodiment approach 1
[0007] Specific embodiment 1: In this embodiment, the method for controlling the synthesis of non-metallic ion-doped nano-titanium dioxide by phase separation-hydrolysis solvothermal method is realized according to the following steps: 1. The volume of butyl titanate and toluene is 1:3 Stir for 20-40 minutes after mixing to obtain an organic phase; 2. Add an aqueous solution of non-metal ions with a concentration of 1.5-2.0 mol / L into the autoclave, then put the organic phase into a U-shaped tank and place it in a non-metallic In the aqueous solution of ions (water phase), the liquid level of the aqueous solution of non-metallic ions is located below the top surface of the U-shaped tank, and then the lid is covered, and then solvothermal reaction is performed at 140~180°C for 5~7h, cooled to room temperature, and filtered ; 3. Under the condition of 100~140℃, the precipitate obtained by filtering in step 2 is dried with dimethyl silicone oil bath for 1h, ground, heated to 300~4...
specific Embodiment approach 2
[0009] Embodiment 2: This embodiment is different from Embodiment 1 in that the stirring time described in Step 1 is 30 minutes. Other steps and parameters are the same as in the first embodiment.
specific Embodiment approach 3
[0010] Embodiment 3: The difference between this embodiment and Embodiment 1 or 2 is that the non-metallic ion aqueous solution described in step 2 is ammonia solution, thiourea solution or sodium sulfide solution. Other steps and parameters are the same as those in Embodiment 1 or 2.
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