Please wait a minute...
Chin. Phys. B, 2025, Vol. 34(9): 094403    DOI: 10.1088/1674-1056/ade59e
Special Issue: SPECIAL TOPIC — Heat conduction and its related interdisciplinary areas
SPECIAL TOPIC — Heat conduction and its related interdisciplinary areas Prev   Next  

Dual-band switchable mid-infrared emitter based on In3SbTe2 for gas detection application

Biyuan Wu(吴必园)1,2, Xiqiao Huang(黄希桥)2, and Xiaohu Wu(吴小虎)1,†
1 Thermal Science Research Center, Shandong Institute of Advanced Technology, Jinan 250100, China;
2 School of Power and Energy, Northwestern Polytechnical University, Xi'an 710072, China
Abstract  As a highly energy-efficient and sensitive radiation source, narrowband thermal emitters provide an ideal solution for non-contact gas detection, enabling the widespread application of mid-infrared "molecular fingerprint" technology. However, most narrowband thermal emitters lack reconfigurability, limiting their adaptability in practical applications. In this study, we propose a novel dual-band switchable narrowband thermal emitter in the mid-infrared region. The emitter consists of an aperiodic Ge/SiO$_{2}$/Ge/SiO$_{2}$ (GSGS) structure and a phase change material In$_{3}$SbTe$_{2}$ (IST). When IST is in the crystalline state, the emitter achieves narrowband emission peaks at wavelengths of 3.79 μm and 6.12 μm, corresponding to the "on" state. However, when IST transitions to the amorphous state, the dual-band high emission disappears and it features angle- and polarization-independent behavior, representing the "off" state. Furthermore, we verify the physical mechanism behind the high emission through phase and amplitude calculations as well as electric field distribution analysis. Notably, the introduction of the IST provides an additional degree of freedom for tunability. Furthermore, by adjusting the thickness of the spacer layer, the emitter can be precisely tuned to match the characteristic absorption peaks of various mid-infrared gases, such as CH$_{4}$, CO$_{2}$, CO, and NO, enabling multi-gas detection in mixed gas environments. The proposed thermal emitter serves as an effective and low-cost alternative for dual-band narrowband mid-infrared light sources, contributing to the advancement of multi-gas detection strategies.
Keywords:  dual-band emitter      switchable      In$_{3}$SbTe$_{2}$      multi-gas detection  
Received:  21 April 2025      Revised:  05 June 2025      Accepted manuscript online:  18 June 2025
PACS:  44.40.+a (Thermal radiation)  
  52.25.Os (Emission, absorption, and scattering of electromagnetic radiation ?)  
  91.60.Hg (Phase changes)  
Fund: This project was supported by the National Natural Science Foundation of China (Grant No. 52106099), the Natural Science Foundation of Shandong Province (Grant No. ZR2022YQ57), and the Taishan Scholars Program.
Corresponding Authors:  Xiaohu Wu     E-mail:  wuxiaohu@pku.edu.cn

Cite this article: 

Biyuan Wu(吴必园), Xiqiao Huang(黄希桥), and Xiaohu Wu(吴小虎) Dual-band switchable mid-infrared emitter based on In3SbTe2 for gas detection application 2025 Chin. Phys. B 34 094403

[1] Chong X, Zhang Y, Li E, Kim K, Ohodnicki P R, Chang C and Wang A X 2018 ACS Sens. 3 230
[2] Chong X, Kim K J, Ohodnicki P R, Li E, Chang C H and Wang A X 2015 IEEE Sens. J. 15 5327
[3] Benavides-Serrano A J, Mannan M S and Laird C D 2015 J. Loss Prev. Process Ind. 35 339
[4] Potyrailo R A 2016 Chem. Rev. 116 11877
[5] Mahapatra C 2025 Med. Gas Res. 15 318
[6] Gouma P 2023 ECS Meet. Abstr. MA2023-02 2974
[7] Pan Y, Zhao J, Lu P, Sima C, Zhang W, Fu L, Liu D, Zhang J, Wu H and Dong L 2022 Photoacoustics 27 100389
[8] Liu N, Mesch M,Weiss T, HentschelMand Giessen H 2010 Nano Lett. 10 2342
[9] Rodrigo D, Limaj O, Janner D, Etezadi D, de Abajo F J G, Pruneri V and Altug H 2015 Science 349 165
[10] Mohammadnezhad M, Zamani-Meymian M, Vahedi M and Fallah M 2024 Phys. Scr. 99 125945
[11] Zhao P, Krishnaiah K V, Guo L, Li T, Ho H L, Zhang A P and Jin W 2024 Laser Photonics Rev. 18 2301285
[12] Li J, Yan H, Dang H and Meng F 2021 Opt. Laser Technol. 135 106658
[13] Yan Y, Xu J, Peng Z, Ji Z, Gao Y, Jia L and Xu Q 2024 Electronics 13 4800
[14] Han J, Li H, Cheng J, Ma X and Fu Y 2025 J. Mater. Chem. C 13 4285
[15] Dao T D, Dubois F, Spettel J, Tortschanoff A, Fleury C, Cselyuszka N, Consani C, Nikolai A and Moridi M 2021 OSA Continuum 6 1827
[16] Jha R K 2022 IEEE Sens. J. 22 6
[17] Xu M, Peng B, Zhu X and Guo Y 2022 Sensors 22 836
[18] Tan X, Zhang H, Li J,Wan H, Guo Q, Zhu H, Liu H and Yi F 2020 Nat. Commun. 11 5245
[19] Faist J, Capasso F, Sivco D L, Sirtori C, Hutchinson A L and Cho A Y 1994 Science 264 553
[20] Yao Y, Hoffman A J and Gmachl C F 2012 Nat. Photonics 6 432
[21] Kumar K S, Vidhya Y E B, Selvaraj R, Seshadri S, Nagendra S M S and Vasa N J 2023 IEEE Sens. J. 23 5703
[22] Sun K, Cai Y and Han Z 2022 J. Phys. D: Appl. Phys. 55 025104
[23] Ma B, Huang Y, Zha W, Qin B, Qin R, Ghosh P, Kaur S, Qin M and Li Q 2022 Nanophotonics 11 4115
[24] Lochbaum A, Fedoryshyn Y, Dorodnyy A, Koch U, Hafner C and Leuthold J 2017 ACS Photonics 4 1371
[25] He J, Ding P, Wang J, Fan C and Liang E 2015 Opt. Express 23 6083
[26] Meng L, Zhao D, Ruan Z, Li Q, Yang Y and Qiu M 2014 Opt. Lett. 39 1137
[27] Hao J,Wang J, Liu X, PadillaWJ, Zhou L and Qiu M 2010 Appl. Phys. Lett. 96 251104
[28] Ali M O, Tait N and Gupta S 2018 J. Opt. Soc. Am. A 35 119
[29] Sun M, Zhang S, Wu D and Han Z 2024 Infrared Phys. Technol. 137 105132
[30] Inoue T, Zoysa M D, Asano T and Noda S 2016 Opt. Express 24 15101
[31] Song F, Wu X, Liu Y and Yu K 2024 Opt. Express 32 41244
[32] Zhou J, Wang B and Zhao C 2024 IEEE Sens. J. 24 20468
[33] Lochbaum A, Dorodnyy A, Koch U, Koepfli S M, Volk S, Fedoryshyn Y, Wood V and Leuthold J 2020 Nano Lett. 20 4169
[34] Li X, Maqbool E and Han Z 2023 Opt. Express 31 20338
[35] Yang S, He M, Hong C, Nordlander J, Maria J, Caldwell J D and Ndukaife J C 2024 Optica 11 305
[36] Sun K, Sun M, Ma Y, Shi Y and Han Z 2023 Int. Commun. Heat Mass Transf. 143 106728
[37] Zhu H, Luo H, Li Q, Zhao D, Cai L, Du K, Xu Z, Ghosh P and Qiu M 2018 Opt. Lett. 43 5230
[38] Qiu Q, Zhou D, Zhang J, Tan C, Xu Q, Zhang Z, Wen Z, Sun Y, Dai N and Hao J 2023 Opt. Lett. 48 6000
[39] Yang Z, IsHii S, Yokoyama T, Dao T D, Sun M G, Pankin P S, Timofeev I V, Nagao T and Chen K P 2017 ACS Photonics 4 2212
[40] Pühringer G, Brandner D, Tischler C, Jannesari R, Grille T, Stocker G, Putz V and Jakoby B 2023 Micro Nano Eng. 19 100209
[41] Amotchkina T, Trubetskov M, Hahner D and Pervak V 2020 Appl. Opt. 59 A40
[42] Li L and Hao H 2022 Sci. Rep. 12 14921
[43] Giteau M, Conrads L, Mathwieser A, Schmitt R, Wuttig M, Taubner T and Papadakis G T 2024 Laser Photonics Rev. 19 2401438
[44] Zhang Z M,Wu X and Fu C 2020 J. Quant. Spectrosc. Radiat. Transfer 245 106904
[45] Hu J, Yao E, Xie W, Liu W, Li D, Lu Y and Zhan Q 2019 Opt. Express 27 18642
[1] Wavelength-interval switchable Brillouin-Raman random fiber laser through Brillouin pump manipulation
Yang Li(李阳), En-Ming Xu(徐恩明), Rui-Jia Chen(陈睿佳), Yu-Gang Shee, and Zu-Xing Zhang(张祖兴). Chin. Phys. B, 2024, 33(7): 074209.
[2] Dual-function terahertz metasurface based on vanadium dioxide and graphene
Jiu-Sheng Li(李九生) and Zhe-Wen Li(黎哲文). Chin. Phys. B, 2022, 31(9): 094201.
[3] Switchable and tunable triple-channel bandpass filter
Ming-En Tian(田明恩), Zhi-He Long(龙之河), Li-Jun Feng(冯丽君), Lei-Lei He(贺磊磊), and Tian-Liang Zhang(张天良). Chin. Phys. B, 2022, 31(7): 078401.
[4] Switchable terahertz polarization converter based on VO2 metamaterial
Haotian Du(杜皓天), Mingzhu Jiang(江明珠), Lizhen Zeng(曾丽珍), Longhui Zhang(张隆辉), Weilin Xu(徐卫林), Xiaowen Zhang(张小文), and Fangrong Hu(胡放荣). Chin. Phys. B, 2022, 31(6): 064210.
[5] Switchable directional scattering based on spoof core—shell plasmonic structures
Yun-Qiao Yin(殷允桥), Hong-Wei Wu(吴宏伟), Shu-Ling Cheng(程淑玲), and Zong-Qiang Sheng(圣宗强). Chin. Phys. B, 2022, 31(5): 054101.
[6] Switchable vortex beam polarization state terahertz multi-layer metasurface
Min Zhong(仲敏) and Jiu-Sheng Li(李九生). Chin. Phys. B, 2022, 31(11): 114201.
[7] Tunable terahertz transmission behaviors and coupling mechanism in hybrid MoS2 metamaterials
Yuwang Deng(邓雨旺), Qingli Zhou(周庆莉), Wanlin Liang(梁菀琳), Pujing Zhang(张朴婧), and Cunlin Zhang(张存林). Chin. Phys. B, 2022, 31(1): 014101.
No Suggested Reading articles found!