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Grisdanurak N. -
หน่วยงาน มหาวิทยาลัยธรรมศาสตร์ - IRDC1
และรู้จักในชื่อของ
- Grisdanurak, N. -
- Grisdanurak N. -
- Grisdanurak N -
- Grisdanurak N -
- Grisdanurak N.
จำนวนงานวิจัยจำแนกรายปี
บุคคลที่เคยร่วมงานวิจัย
ความเชี่ยวชาญ
ไม่มีข้อมูลความเชี่ยวชาญ
ผลงานวิจัย
# หัวเรื่อง
ปี พ.ศ. 2554
1 Degradation of paraquat under visible light over fullerene modified V-TiO2
2 Effect of Fe3+ doping on the performance of TiO2 mechanocoated alumina bead photocatalysts
3 Gas-bubbled nano zero-valent iron process for high concentration arsenate removal
4 Impact of selected solution factors on arsenate and arsenite removal by nanoiron particles
5 Optimization for UV-photocatalytic degradation of paraquat over titanium dioxide supported on rice husk silica using Box-Behnken design
6 Optimization for UV-photocatalytic degradation of paraquat over titanium dioxide supported on rice husk silica using Box-Behnken design
7 Effect of Fe3+ doping on the performance of TiO2 mechanocoated alumina bead photocatalysts
8 Optimization of alachlor degradation on S-Doped TiO2by sonophotocatalytic activity under visible light
9 Photocatalytic degradation of benzene, toluene, ethylbenzene, and xylene (BTEX) using transition metal-doped titanium dioxide immobilized on fiberglass cloth
10 Photocatalytic degradation of benzene toluene ethylbenzene and xylene (BTEX) using transition metal-doped titanium dioxide immobilized on fiberglass cloth
11 Visible light-irradiated degradation of alachlor on Fe-TiO2 with assistance of H2O2
12 Degradation of paraquat under visible light over fullerene modified V-TiO2
13 Visible light-irradiated degradation of alachlor on Fe-TiO2 with assistance of H2O2
14 Gas-bubbled nano zero-valent iron process for high concentration arsenate removal
15 Optimization for UV-photocatalytic degradation of paraquat over titanium dioxide supported on rice husk silica using Box-Behnken design
16 Gas-bubbled nano zero-valent iron process for high concentration arsenate removal
17 Degradation of paraquat under visible light over fullerene modified V-TiO2
18 Effect of Fe3+ doping on the performance of TiO2 mechanocoated alumina bead photocatalysts
19 Impact of selected solution factors on arsenate and arsenite removal by nanoiron particles
20 Optimization of alachlor degradation on S-Doped TiO2by sonophotocatalytic activity under visible light
21 Optimization for UV-photocatalytic degradation of paraquat over titanium dioxide supported on rice husk silica using Box-Behnken design
22 Photocatalytic degradation of benzene, toluene, ethylbenzene, and xylene (BTEX) using transition metal-doped titanium dioxide immobilized on fiberglass cloth
23 Visible light-irradiated degradation of alachlor on Fe-TiO2 with assistance of H2O2
24 Gas-Bubbled nano zero-valent iron process for high concentration arsenate removal
25 Degradation of paraquat under visible light over fullerene modified V-TiO2
26 Photocatalytic degradation of benzene toluene ethylbenzene and xylene (BTEX) using transition metal-doped titanium dioxide immobilized on fiberglass cloth
27 Visible light-irradiated degradation of alachlor on Fe-TiO2 with assistance of H2O2
28 Impact of selected solution factors on arsenate and arsenite removal by nanoiron particles
29 Gas-bubbled nano zero-valent iron process for high concentration arsenate removal
30 Optimization of alachlor degradation on S-Doped TiO2by sonophotocatalytic activity under visible light
ปี พ.ศ. 2551
31 Fed-batch optimization of α-amylase and protease-producing Bacillus subtilis using genetic algorithm and particle swarm optimization
32 Fed-batch optimization of recombinant α-amylase production by Bacillus subtilis using a modified Markov Chain monte carlo technique