Flexible photonic crystals for strain sensing

被引:32
作者
Fortes, Luis M. [1 ]
Clara Goncalves, M. [1 ]
Almeida, Rui M. [1 ]
机构
[1] Univ Tecn Lisboa, Dept Engn Mat ICEMS, Inst Super Tecn, P-1049001 Lisbon, Portugal
关键词
Photonic crystal; Photonic band gap; Colloids; Strain sensor; Opals; COLLOIDAL CRYSTALS; OPTICAL-PROPERTIES; SENSORS; OPTIMIZATION; OPALS; GEL;
D O I
10.1016/j.optmat.2010.09.024
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Three-dimensional (3-D) photonic crystals (PCs) have been studied as possible strain sensing materials, based on strain-induced stop band frequency shifting. Self-assembly of polystyrene microspheres, achieved by sedimentation over a flexible polyimide tape substrate whose surface hydrophilicity was optimized in order to achieve maximum wettability, led to an organized 3-D direct opal template. This was infiltrated with a silica sol-gel solution by dip-coating or by chemical vapour deposition and an inverse opal structure was ultimately obtained by chemical dissolution of the polymer template. The structural and optical properties of these PCs have been studied by scanning electron microscopy (FE-SEM) and UV/visible spectroscopy under variable degrees of strain. FE-SEM showed the presence of ordered domains up to similar to 30 mu m(2). A mechano-optical effect was evidenced by strain-induced shifting of the photonic stop band peak wavelength of the direct, infiltrated and inverse opals up to 50 nm in transmission mode, due to changes in interplanar spacing upon bending the flexible PCs. Optical response strain cycles were studied, suggesting the possible use of these structures in reversible photonic strain sensors integrated in sensor/actuator devices. (C) 2010 Elsevier B.V. All rights reserved.
引用
收藏
页码:408 / 412
页数:5
相关论文
共 50 条
[21]   Dimethyl sulfoxide infiltrated photonic crystals for gas sensing [J].
Yang, Ji ;
Zhu, Zuogang ;
Feng, Jinsheng ;
Xue, Min ;
Meng, Zihui ;
Qiu, Lili ;
Mbola, Nyv Mondele .
MICROCHEMICAL JOURNAL, 2020, 157
[22]   Colloidal Photonic Crystals of Reusable Hydrogel Microparticles for Sensor and Laser Applications [J].
Iwata, Naoto ;
Koike, Takeru ;
Tokuhiro, Kaya ;
Sato, Ryu ;
Furumi, Seiichi .
ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (48) :57893-57907
[23]   Progress in the fabrication and application of photonic crystals [J].
Ni Pei-Gen .
ACTA PHYSICA SINICA, 2010, 59 (01) :340-350
[24]   Raman Scattering in Nanocomposite Photonic Crystals [J].
Gorelik, V. S. ;
Bi, Dongxue ;
Fei, Guang Tao ;
Xu, Shao Hui ;
Gao, Xu Dong .
INORGANIC MATERIALS, 2019, 55 (04) :355-364
[25]   A flexible design for one-dimensional photonic crystals with controllable photonic bandgap width [J].
Bananej, A. ;
Hamidi, S. M. ;
Li, W. ;
Li, C. ;
Tehranchi, M. M. .
OPTICAL MATERIALS, 2008, 30 (12) :1822-1827
[26]   Gas adsorption behavior of silica photonic crystals with different size of initial particles [J].
Xie, Juan ;
Duan, Ming ;
Bai, Penghui ;
Wang, Hu .
JOURNAL OF THE CERAMIC SOCIETY OF JAPAN, 2020, 128 (01) :19-23
[27]   Fabrication strategies and microscale sensing functionalities of mechanochromic colloidal photonic crystals for underwater applications [J].
Qi, Feng-Lian ;
Li, Qun ;
Ding, Cai-Feng ;
Wu, Jia-Bin .
MICROSTRUCTURES, 2025, 5 (01)
[28]   Metalloporphyrins into mesoporous photonic crystals: towards molecularly-tuned photonic sensing devices [J].
Caraballo, Rolando M. ;
Onna, Diego ;
Abdala, Nicolas Lopez ;
Soler Illia, Galo J. A. A. ;
Hamer, Mariana .
SENSORS AND ACTUATORS B-CHEMICAL, 2020, 309
[29]   Photonic band gaps of wurtzite GaN and AlN photonic crystals at short wavelengths [J].
Melo, E. G. ;
Alayo, M. I. .
PHOTONICS AND NANOSTRUCTURES-FUNDAMENTALS AND APPLICATIONS, 2015, 14 :35-45
[30]   Ionic conductive hydrogels formed through hydrophobic association for flexible strain sensing [J].
Yazdani, Sadia ;
Khan, Mansoor ;
Shahzad, Arooba ;
Shah, Luqman Ali ;
Ye, Daixin .
SENSORS AND ACTUATORS A-PHYSICAL, 2023, 350