Role of graphene quantum dots with discrete band gaps on SnO2 nanodomes for NO2 gas sensors with an ultralow detection limit

被引:14
作者
Lee, Jinho [1 ]
Park, Minsu [2 ]
Song, Young Geun [3 ]
Cho, Donghwi [4 ]
Lee, Kwangjae [5 ]
Shim, Young-Seok [6 ]
Jeon, Seokwoo [1 ,7 ]
机构
[1] Korea Adv Inst Sci & Technol KAIST, Dept Mat Sci & Engn, Daejeon 34141, South Korea
[2] Northwestern Univ, Querrey Simpson Inst Bioelect, Evanston, IL 60208 USA
[3] Korea Inst Sci & Technol KIST, Elect Mat Res Ctr, Seoul 02791, South Korea
[4] Korea Res Inst Chem Technol, Thin Film Mat Res Ctr, Daejeon 34114, South Korea
[5] Sangmyung Univ, Dept Informat Secur Engn, Cheonan 31066, South Korea
[6] Korea Univ Technol & Educ, Sch Energy Mat & Chem Engn, Cheonan 31253, South Korea
[7] Korea Univ, Dept Mat Sci & Engn, Seoul 02841, South Korea
来源
NANOSCALE ADVANCES | 2023年 / 5卷 / 10期
关键词
METAL-OXIDE NANOSTRUCTURES; SENSING PERFORMANCE; ROOM-TEMPERATURE; PHOTOLUMINESCENCE; EFFICIENT; ARRAYS;
D O I
10.1039/d2na00925k
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
NO2 is a major air pollutant that should be monitored due to its harmful effects on the environment and human health. Semiconducting metal oxide-based gas sensors have been widely explored owing to their superior sensitivity towards NO2, but their high operating temperature (>200 degrees C) and low selectivity still limit their practical use in sensor devices. In this study, we decorated graphene quantum dots (GQDs) with discrete band gaps onto tin oxide nanodomes (GQD@SnO2 nanodomes), enabling room temperature (RT) sensing towards 5 ppm NO2 gas with a noticeable response ((R-a/R-g) - 1 = 4.8), which cannot be matched using pristine SnO2 nanodomes. In addition, the GQD@SnO2 nanodome based gas sensor shows an extremely low detection limit of 1.1 ppb and high selectivity compared to other pollutant gases (H2S, CO, C7H8, NH3, and CH3COCH3). The oxygen functional groups in GQDs specifically enhance NO2 accessibility by increasing the adsorption energy. Strong electron transfer from SnO2 to GQDs widens the electron depletion layer at SnO2, thereby improving the gas response over a broad temperature range (RT-150 degrees C). This result provides a basic perspective for utilizing zero-dimensional GQDs in high-performance gas sensors operating over a wide range of temperatures.
引用
收藏
页码:2767 / 2775
页数:9
相关论文
共 48 条
  • [11] A review on chemiresistive room temperature gas sensors based on metal oxide nanostructures, graphene and 2D transition metal dichalcogenides
    Joshi, Nirav
    Hayasaka, Takeshi
    Liu, Yumeng
    Liu, Huiliang
    Oliveira, Osvaldo N., Jr.
    Lin, Liwei
    [J]. MICROCHIMICA ACTA, 2018, 185 (04)
  • [12] Near Room Temperature, Fast-Response, and Highly Sensitive Triethylamine Sensor Assembled with Au-Loaded ZnO/SnO2 Core Shell Nanorods on Flat Alumina Substrates
    Ju, Dian-Xing
    Xu, Hong-Yan
    Qiu, Zhi-Wen
    Zhang, Zi-Chao
    Xu, Oj
    Zhang, Jun
    Wang, Jie-Qiang
    Cao, Bing-Qiang
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (34) : 19163 - 19171
  • [13] Boosting Unassisted Alkaline Solar Water Splitting Using Silicon Photocathode with TiO2 Nanorods Decorated by Edge-Rich MoS2 Nanoplates
    Jun, Sang Eon
    Hong, Seung-Pyo
    Choi, Seokhoon
    Kim, Changyeon
    Ji, Su Geun
    Park, Ik Jae
    Lee, Sol A.
    Yang, Jin Wook
    Lee, Tae Hyung
    Sohn, Woonbae
    Kim, Jin Young
    Jang, Ho Won
    [J]. SMALL, 2021, 17 (39)
  • [14] Multiphoton luminescent graphene quantum dots for in vivo tracking of human adipose-derived stem cells
    Kim, Jin
    Song, Sung Ho
    Jin, Yoonhee
    Park, Hyun-Ji
    Yoon, Hyewon
    Jeon, Seokwoo
    Cho, Seung-Woo
    [J]. NANOSCALE, 2016, 8 (16) : 8512 - 8519
  • [15] Advances in designs and mechanisms of semiconducting metal oxide nanostructures for high-precision gas sensors operated at room temperature
    Li, Zhijie
    Li, Hao
    Wu, Zhonglin
    Wang, Mingkui
    Luo, Jingting
    Torun, Hamdi
    Hu, PingAn
    Yang, Chang
    Grundmann, Marius
    Liu, Xiaoteng
    Fu, YongQing
    [J]. MATERIALS HORIZONS, 2019, 6 (03) : 470 - 506
  • [16] The chemistry of graphene
    Loh, Kian Ping
    Bao, Qiaoliang
    Ang, Priscilla Kailian
    Yang, Jiaxiang
    [J]. JOURNAL OF MATERIALS CHEMISTRY, 2010, 20 (12) : 2277 - 2289
  • [17] Nitrogen-doped graphene quantum dots-modified mesoporous SnO2 hierarchical hollow cubes for low temperature detection of nitrogen dioxide
    Lv, Ya-Kun
    Li, Yan-Yang
    Yao, Hong-Chang
    Li, Zhong-Jun
    [J]. SENSORS AND ACTUATORS B-CHEMICAL, 2021, 339
  • [18] N-Doped Graphene Quantum Dot-Decorated Three-Dimensional Ordered Macroporous In2O3 for NO2 Sensing at Low Temperatures
    Lv, Ya-Kun
    Li, Yan-Yang
    Zhou, Rong-Hui
    Pan, Yu-Ping
    Yao, Hong-Chang
    Li, Zhong-Jun
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (30) : 34245 - 34253
  • [19] Fast P3HT Exciton Dissociation and Absorption Enhancement of Organic Solar Cells by PEG-Functionalized Graphene Quantum Dots
    Novak, Travis G.
    Kim, Jungmo
    Song, Sung Ho
    Jun, Gwang Hoon
    Kim, Hyojung
    Jeong, Mun Seok
    Jeon, Seokwoo
    [J]. SMALL, 2016, 12 (08) : 994 - 999
  • [20] Quenching-Resistant Solid-State Photoluminescence of Graphene Quantum Dots: Reduction of π-π Stacking by Surface Functionalization with POSS, PEG, and HDA
    Park, Minsu
    Jeong, Yangho
    Kim, Hyung Suk
    Lee, Woochan
    Nam, Sang-Hyeon
    Lee, Sukki
    Yoon, Hyewon
    Kim, Jin
    Yoo, Seunghyup
    Jeon, Seokwoo
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2021, 31 (29)