Table 3
Summary of various photocatalysts for toluene oxidation
Photocatalyst | Light source(light absorption range) | Reaction system | Degradationefficiency (%) | Stability(min) | Reference |
Cu2O NWs/Cu mesh | 300 W, xenon lamp | Static reactor | 99.9 | ≥1200 | [77] |
β-Ga2O3 | 300 W, mercury lamp(≥280 nm) | Continuous flow reaction system | 77.3 | ≥300 | [73] |
BiOCl-010 | 300 W, UV light(≥350 nm) | Continuous flow reaction system | 61.0 | ≥30 | [68] |
Sr1−xBaxTiO3 | 300 W, high-pressuremercury lamp (≥340 nm) | Continuous flow reaction system | 73.94 | ≥180 | [70] |
SrTiO3 | 300 W, mercury lamp(≥390 nm) | Continuous flow reaction system | 80.0 | ≥70 | [69] |
Sr2Sb2O7 | 300 W, high-pressure Hg lamp(≥300 nm) | Continuous flow reaction system | 73.3 | ≥420 | [71] |
Zn-Ti-LDHs | 300 W, mercury lamp(≥340 nm) | Continuous flow reaction system | 75.2 | ≥180 | [72] |
In(OH)3 | 300 W, UV mercury lamp(≥245 nm) | Continuous flow reaction system | 57.7 | ≥180 | [74] |
SnO2 | 125 W, mercury lamp(≥360 nm) | Continuous stream reaction system | 62.4 | ≥150 | [76] |
LDH/Zn2SnO4 | UV light, high-pressuremercury lamp (≥240 nm) | Continuous flow reaction system | 89.8 | ≥300 | [78] |
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