Journal of Inorganic Materials ›› 2022, Vol. 37 ›› Issue (1): 38-44.DOI: 10.15541/jim20210262
• TOPICAL SECTION: Green Conversion of CO2 (Contributing Editor: OUYANG Shuxin, WANG Wenzhong) • Previous Articles Next Articles
LIU Xuechen1(), ZENG Di1,2, ZHOU Yuanyi1,2, WANG Haipeng1,2, ZHANG Ling1,2(
), WANG Wenzhong1,2,3(
)
Received:
2021-04-20
Revised:
2021-06-23
Published:
2022-01-20
Online:
2021-06-30
Contact:
ZHANG Ling, associate professor. E-mail: lingzhang@mail.sic.ac.cn; WANG Wenzhong, professor. E-mail: wzwang@mail.sic.ac.cn
About author:
LIU Xuechen(1996-), female, Master candidate. E-mail: xuechen1215@shu.edu.cn
Supported by:
CLC Number:
LIU Xuechen, ZENG Di, ZHOU Yuanyi, WANG Haipeng, ZHANG Ling, WANG Wenzhong. Selective Oxidation of Biomass over Modified Carbon Nitride Photocatalysts[J]. Journal of Inorganic Materials, 2022, 37(1): 38-44.
Fig. 1 XRD patterns of samples prepared at different conditions (a) Sample PI (1:1) and its precursor PMDA and melem; (b) Samples PI (1:1), PI (2:1), PI (1:2), and PI (1:2)-120
Fig. 3 XPS spectra of different samples (C1s)(a-d), and structural illustration of PI sample (e) (different colors of C atoms correspond to XPS spectra) (a) PI (1:1); (b) PI (1:1)-120; (c) PI (1:2); (d) PI (1:2)-120; Colorful figures are available on website
Fig. 4 O2-TPD (a), UV-Vis diffuse reflectance spectra (b) and photocurrent profiles (c) of different samples Colorful figures are available on website
Entry | Catalyst | Con./% | Sel./% |
---|---|---|---|
1[a] | C3N4 | 62.8 | 13.5 |
2[a] | Melem | 69.9 | 12.4 |
3[a] | PI (1:1) | 72.4 | 16.4 |
4[a] | PI (2:1) | 94.6 | 3.4 |
5[a] | PI (1:2) | 72.0 | 19.3 |
6[a] | PI (1:1)-120 | 14.7 | 57.3 |
7[a] | PI (1:2)-120 | 22.3 | 67.8 |
8[b] | PI (1:2)-120 | 53.3 | 96.2 |
9[c] | PI (1:2) | 85.9 | 9.7 |
Table 1 Experimental results of catalytic oxidation of HMF by different catalysts
Entry | Catalyst | Con./% | Sel./% |
---|---|---|---|
1[a] | C3N4 | 62.8 | 13.5 |
2[a] | Melem | 69.9 | 12.4 |
3[a] | PI (1:1) | 72.4 | 16.4 |
4[a] | PI (2:1) | 94.6 | 3.4 |
5[a] | PI (1:2) | 72.0 | 19.3 |
6[a] | PI (1:1)-120 | 14.7 | 57.3 |
7[a] | PI (1:2)-120 | 22.3 | 67.8 |
8[b] | PI (1:2)-120 | 53.3 | 96.2 |
9[c] | PI (1:2) | 85.9 | 9.7 |
Fig. 5 Nitrogen oxide radical detection and catalytic mechanism analysis (a) FT-IR spectra of PI (1:2) and PI (1:2)-120; (b) In situ FT-IR spectra of PI (1:2)-120 illuminated in air; (c) Absorption intensity versus time for catalyst suspensions with 4 mmol/L HMF added
Fig. S2 Mott-Schottky spectra (a, b), estimated bandgap based on UV-Vis diffuse reflectance (c), valence band position estimation based on VB XPS (d), schematic diagram of catalyst energy band position (e) of different samples
Fig. S3 (a) Comparison of absorbance of methanone after testing the superoxide radical reaction; (b) Comparison of the yields of OH; (c) Comparison of the yields of H2O2 Experimental condition: 50 mg Catalyst, 30 mL deionized water, atmospheric pressure: air atmosphere, 15 ℃, reaction time: 1 h (Fig. S3(a) concentration of NBT solution=0.2 mmol/L)
Fig. S4 Cycling experiments of PI(1 : 2)-120 catalyst Experimental conditions: 50 mg PI(1:2)-120 catalyst, 400 nm LED lamp, 30 mL 0.67 mmol/L HMF aqueous solution, atmospheric pressure air, reaction for 12 h at 15 ℃
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