Chem. J. Chinese Universities ›› 2021, Vol. 42 ›› Issue (5): 1395.doi: 10.7503/cjcu20200754
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ZHANG Zhen1,2, MAO Dan2,3, YANG Mei2(), YU Ranbo1(
)
Received:
2020-10-19
Online:
2021-05-10
Published:
2021-02-10
Contact:
YANG Mei,YU Ranbo
E-mail:myang@ipe.ac.cn;ranboyu@ustb.edu.cn
Supported by:
CLC Number:
TrendMD:
ZHANG Zhen, MAO Dan, YANG Mei, YU Ranbo. Application of Hollow Multi⁃shelled Structures in Electromagnetic Wave Field[J]. Chem. J. Chinese Universities, 2021, 42(5): 1395.
Electromagnetic wave | Wavelength/nm | Frequency/Hz | Application |
---|---|---|---|
Radio waves | >1000 | <3×1011 | Communications, radar |
Infrared light | 760—1000 | 1012—3.9×1014 | Photothermal therapy, thermal imaging |
Visible light | 390—760 | 3.9×1014—7.5×1014 | Photocatalysis, solar cell |
Ultraviolet light | 10—400 | 7.5×1014—5×1016 | Sterilization, photoelectric detection |
X?Ray, γ ray, etc. | <10 | >5×1016 | Bioimaging, crystal analysis, medical treatment |
Electromagnetic wave | Wavelength/nm | Frequency/Hz | Application |
---|---|---|---|
Radio waves | >1000 | <3×1011 | Communications, radar |
Infrared light | 760—1000 | 1012—3.9×1014 | Photothermal therapy, thermal imaging |
Visible light | 390—760 | 3.9×1014—7.5×1014 | Photocatalysis, solar cell |
Ultraviolet light | 10—400 | 7.5×1014—5×1016 | Sterilization, photoelectric detection |
X?Ray, γ ray, etc. | <10 | >5×1016 | Bioimaging, crystal analysis, medical treatment |
1 | Cheng F., Environment and Sustainable Development,2015, 40(1), 126—127(程芳. 环境与可持续发展, 2015, 40(1), 126— 127) |
2 | Yang X. X., Li S. L., Wei P., Feng L. H., Frontier Science,2014, 8(1), 13—26(杨新兴, 李世莲, 尉鹏, 冯丽华. 前沿科学, 2014, 8(1), 13—26) |
3 | Xiang Z., Song Y., Xiong J., Pan Z., Wang X., Liu L., Liu R., Yang H., Lu W., Carbon,2019, 142, 20—31 |
4 | Jia Z., Lan D., Lin K., Qin M., Kou K., Wu G., Wu H., J. Mater. Sci., Mater. Electron.,2018, 29(20), 17122—17136 |
5 | Tian J., Zhu H., Chen J., Zheng X., Duan H., Pu K., Chen P., Small,2017, 13(22), 1700798 |
6 | Shcherbakova D. M., Verkhusha V. V., Nat. Methods,2013, 10(8), 751—754 |
7 | Ring E. F., Ammer K., Physiol. Meas.,2012, 33(3), R33—R46 |
8 | Shen J., Zhao L., Han G., Adv. Drug Delivery Rev.,2013, 65(5), 744—755 |
9 | Zhang P., Lou X. W., Adv. Mater.,2019, 31(29), 1900281 |
10 | Wang Z., Akter Monny S., Wang L., ChemNanoMat, 2020, 6(6), 881—888 |
11 | Hu F., Zhang Y., Chen G., Li C., Wang Q., Small,2015, 11(8), 985—993 |
12 | Zhang C., Gu Y., Teng G., Wang L., Jin X., Qiang Z., Ma W., ACS Appl. Mater. Interfaces,2020, 12(26), 29883—29898 |
13 | Iwaguch S., Matsumura K., Tokuoka Y., Wakui S., Kawashima N., Colloids Surf. B,2002, 25(4), 299—304 |
14 | Song K., Mohseni M., Taghipour F., Water Res., 2016, 94, 341—349 |
15 | Garofalo M., Villa A., Brunialti E., Crescenti D., Dell’Omo G., Kuryk L., Vingiani A., Mazzaferro V., Ciana P., Nanotheranostics, 2020, 5(1), 1—7 |
16 | Xiao T. Q., Xie H. L., Deng B., Du G. H., Chen R. C., Acta Opt. Sin., 2014, 34(1), 9—23(肖体乔, 谢红兰, 邓彪, 杜国浩, 陈荣昌. 光学学报, 2014, 34(1), 9—23) |
17 | Ma L. D., Progress in Physics, 2014, 34(2), 47—117(马礼敦. 物理学进展, 2014, 34(2), 47—117) |
18 | Li M., Mao D., Wan J., Wang F., Zhai T., Wang D., Inorg. Chem. Front., 2019, 6(8), 1968—1972 |
19 | Lien D. H., Dong Z., Retamal J. R. D., Wang H. P., Wei T. C., Wang D., He J. H., Cui Y., Adv. Mater., 2018, 30(34), 1801972 |
20 | Zhang X. J., Zhu J. Q., Yin P. G., Guo A. P., Huang A. P., Guo L., Wang G. S., Adv. Funct. Mater., 2018, 28(49), 1800761 |
21 | Xiong J., Xiang Z., Deng B., Wu M., Yu L., Liu Z., Cui E., Pan F., Liu R., Lu W., Appl. Surf. Sci., 2020, 513, 145778 |
22 | Wang Y., Han B., Chen N., Deng D., Guan H., Wang Y., J. Alloys Compd., 2016, 676, 224—230 |
23 | Zhao B., Shao G., Fan B., Zhao W., Xie Y., Zhang R., J. Mater. Chem. A, 2015, 3(19), 10345—10352 |
24 | Zhou C., Geng S., Xu X., Wang T., Zhang L., Tian X., Yang F., Yang H., Li Y., Carbon, 2016, 108, 234—241 |
25 | Wei Y., Yang N., Huang K., Wan J., You F., Yu R., Feng S., Wang D., Adv. Mater., 2020, 32(44), 2002556 |
26 | Lai X., Halpert J. E., Wang D., Energy Environ. Sci., 2012, 5(2), 5604—5618 |
27 | Mao D., Wan J., Wang J., Wang D., Adv. Mater., 2018, 31(38), 1802874 |
28 | Zong L., Xu P., Ding Y., Zhao K., Wang Z., Yan X., Yu R., Chen J., Xing X., Small, 2015, 11(23), 2768—2773 |
29 | Zhang X., Peng J., Song Y., Chen Y., Lu F., Gao W., Biosens. Bioelectron., 2019, 133, 125—132 |
30 | Ren H., Yu R., Inorg. Chem. Front., 2019, 6(9), 2239—2259 |
31 | Li B., Mao B., He T., Huang H., Wang X., ACS Appl. Electron. Mater., 2019, 1(10), 2140—2149 |
32 | Xu H., Yin X., Zhu M., Han M., Hou Z., Li X., Zhang L., Cheng L., ACS Appl. Mater. Interfaces, 2017, 9(7), 6332—6341 |
33 | Yang S., You W. B., Qiu L. C., Che R. C., Yang S. J., Chin. Sci. Bull., 2018, 63(8), 712—724(杨盛, 游文彬, 裘立成, 车仁超, 杨士军. 科学通报, 2018, 63(8), 712—724) |
34 | Gao T., Jelle B. P., Gustavsen A., Appl. Phys. A, Mater. Sci. Process., 2012, 110(1), 65—70 |
35 | Wei Y., Wan J., Yang N., Yang Y., Ma Y., Wang S., Wang J., Yu R., Gu L., Wang L., Wang L., Huang W., Wang D., Natl. Sci. Rev., 2020,7(11), 1638—1646 |
36 | Wang B., Li R., Zhang Z., Zhang W., Yan X., Wu X., Cheng G., Zheng R., J. Mater. Chem. A, 2017, 5(27), 14415—14421 |
37 | Pang R., Hu X., Zhou S., Sun C., Yan J., Sun X., Xiao S., Chen P., Chem. Commun., 2014, 50(83), 12493—12496 |
38 | Wang X., Liao M., Zhong Y., Zheng J. Y., Tian W., Zhai T., Zhi C., Ma Y., Yao J., Bando Y., Golberg D., Adv. Mater., 2012, 24(25), 3421—3425 |
39 | Dong Z., Ren H., Hessel C. M., Wang J., Yu R., Jin Q., Yang M., Hu Z., Chen Y., Tang Z., Zhao H., Wang D., Adv. Mater., 2014, 26(6), 905—909 |
40 | Qi J., Zhao K., Li G., Gao Y., Zhao H., Yu R., Tang Z., Nanoscale, 2014, 6(8), 4072—4077 |
41 | Dong Z., Lai X., Halpert J. E., Yang N., Yi L., Zhai J., Wang D., Tang Z., Jiang L., Adv. Mater., 2012, 24(8), 1046—1049 |
42 | Wei Y. Z., Hollow Multi⁃shelled Structures of Complex Metal Oxide: Preparation and Application in Photocatalysis, University of Science and Technology Beijing, Beijing, 2019(魏延泽. 复合金属氧化物中空多壳结构的制备及其光催化应用研究, 北京: 北京科技大学, 2019) |
43 | Yang L., Lv H., Li M., Zhang Y., Liu J., Yang Z., Chem. Eng. J., 2020, 392, 123666 |
44 | Yang Z., Li M., Zhang Y., Yang L., Liu J., Wang Y., He Q., J. Alloys Compd., 2020, 817, 152795 |
45 | Liu J., Cheng J., Che R., Xu J., Liu M., Liu Z., J. Phys. Chem. C, 2012, 117(1), 489—495 |
46 | Tao J., Zhou J., Yao Z., Jiao Z., Wei B., Tan R., Li Z., Carbon,2021, 172, 542—555 |
47 | Tong Z., Yang D., Li Z., Nan Y., Ding F., Shen Y., Jiang Z., ACS Nano, 2017, 11(1), 1103—1112 |
48 | Zong L., Xu J., Jiang S., Zhao K., Wang Z., Liu P., Zhao H., Chen J., Xing X., Yu R., Adv. Mater., 2017, 29(9), 1604377 |
49 | Wang L., Wan J., Zhao Y., Yang N., Wang D., J. Am. Chem. Soc., 2019, 141(6), 2238—2241 |
50 | Jiang S., Zhao K., Al⁃Mamun M., Zhong Y. L., Liu P., Yin H., Jiang L., Lowe S., Qi J., Yu R., Wang D., Zhao H., Inorg. Chem. Front., 2019, 6(7), 1667—1674 |
51 | Sun L., Han X., Jiang Z., Ye T., Li R., Zhao X., Han X., Nanoscale,2016, 8(26), 12858—12862 |
52 | Wei Y., Wang J., Yu R., Wan J., Wang D., Angew. Chem. Int. Ed., 2019, 58(5), 1422—1426 |
53 | You F., Wan J., Qi J., Mao D., Yang N., Zhang Q., Gu L., Wang D., Angew. Chem. Int. Ed., 2020,59(2), 721—724 |
54 | Zhang P., Guan B. Y., Yu L., Lou X. W., Chem, 2018, 4(1), 162—173 |
55 | Waqas M., Wei Y., Mao D., Qi J., Yang Y., Wang B., Wang D., Nano Res., 2017, 10(11), 3920—3928 |
56 | Wang S., Zhang X., Li S., Fang Y., Pan L., Zou J. J., J. Hazard. Mater., 2017, 331, 235—245 |
57 | Wang J., Wan J., Yang N., Li Q., Wang D., Nat. Rev. Chem., 2020, 4(3), 159—168 |
58 | Wang H., Mao D., Qi J., Zhang Q., Ma X., Song S., Gu L., Yu R., Wang D., Adv. Funct. Mater., 2019, 29(15), 1806588 |
59 | Wang H., Qi J., Yang N., Cui W., Wang J., Li Q., Zhang Q., Yu X., Gu L., Li J., Yu R., Huang K., Song S., Feng S., Wang D., Angew. Chem. Int. Ed., 2020, 59(44), 19691—19695 |
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