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List of results
- Results for photocatalytic reduction of CO2 + (0.4)
- Control experiments + (0.4)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (0.5)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and purpurin + (0.5)
- Control experiments + (0.5)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (0.6)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (0.6)
- CO2 Reduction under diverse conditions with diverse sensitizers + (0.6)
- Results for different electron donors and proton donors + (0.6)
- Photocatalytic reduction of CO2, best TON + (0.6)
- Optimizations of conditions for Fe(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (0.7)
- experiments + (0.7)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (0.8)
- CO2 Reduction under diverse conditions with diverse sensitizers + (0.8)
- Optimizations of conditions for Fe(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (0.8)
- table 1 + (0.8)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (0.9)
- Table 1: Summary of Catalytic Experiments for Photocatalysis. + (0.9)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (1)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (1)
- Table 1 + (1)
- Results for different electron donors and proton donors + (1)
- Control experiments + (1)
- Optimizations of conditions for Fe(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (1.1)
- Optimizations of conditions for Fe(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (1.1)
- Photocatalytic CO2 Reduction by 1 (2 μM) in CO2-Saturated Aqueous CH3CN Solutions + (1.1)
- Table 1: Summary of Catalytic Experiments for Photocatalysis. + (1.1)
- Table 1: Summary of Catalytic Experiments for Photocatalysis. + (1.2)
- Concentration and solvent effect + (1.2)
- CO2 Reduction under diverse conditions with diverse sensitizers + (1.3)
- Concentration and solvent effect + (1.3)
- Control experiments + (1.3)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (1.3)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and purpurin + (1.3)
- Photocatalytic CO2 Reduction by 1 (2 μM) in CO2-Saturated Aqueous CH3CN Solutions + (1.3)
- Photocatalytic CO2 reduction: conditions optimization + (1.3)
- table 1 + (1.3)
- Photocatalytic CO2 Reduction by 1 (2 μM) in CO2-Saturated Aqueous CH3CN Solutions + (1.5)
- Photocatalytic CO2 Reduction by 1 (2 μM) in CO2-Saturated Aqueous CH3CN Solutions + (1.5)
- Control experiments + (1.6)
- Table 1: Summary of Catalytic Experiments for Photocatalysis. + (1.6)
- Control experiments + (1.6)
- Concentration and solvent effect + (1.6)
- Photocatalytic reduction of CO2 + (1.7)
- Optimizations of conditions for Co(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (1.8)
- Photocatalytic CO2 Reduction by 1 (2 μM) in CO2-Saturated Aqueous CH3CN Solutions + (1.8)
- Table 1: Summary of Catalytic Experiments for Photocatalysis. + (1.8)
- Optimizations of conditions for Fe(qpy)(H2O)2(ClO4)2 and Ru(bpy)3Cl2 + (1.9)
- Results for photocatalytic reduction of CO2 + (1.9)
- Optimization of concentrations + (10.1)
- Table 2 + (10.1)
- Photocatalytic reduction of CO2: conditions optimization + (10.2)
- Optimization of concentrations + (10.3)
- Photocatalytic CO2 reduction: conditions optimization + (10.3)
- Photocatalytic reduction of CO2: conditions optimization + (10.3)
- Table 2 + (10.3)
- Concentration and solvent effect + (10.4)
- Photocatalytic CO2 reduction: conditions optimization + (10.5)

