1. Field of the Invention
The present invention relates to a bistable photonic crystal, and more particularly to a photonic crystal which can remain at either of the two stable states without external power consumption.
2. Description of the Prior Art
Photonic crystal is a nanostructure with refractive index periodic arrangement, which can the propagation and transmission properties of light. Meanwhile, photonic crystal is a good candidate material for future optical elements, such as optical communication, display device and optical computer. Recently, the fabrication process, the tunable method and the driving pattern for photonic crystal continue to be important aims for the development of photonic crystal. In conventional method, the tunable photonic crystals generate color variation by electrochemistry method. However, the conventional method of tunable photonic crystal are limited to the liquid diffusion velocity (˜10−3 m/s) and the selection of material, leading to the difficulty of achieving fast response time and wide color variation at the same time.
In addition, some conventional tunable photonic crystals apply dilatation, contracting elastic polymer, or modifying periodicity with magnetism to achieve a tunable range of wavelength in excess of 10 nanometer (nm), however, these conventional tunable photonic crystals have relevance with the transport mechanism of fluid, causing the response time to be at least 1 second above. On the contrary, the conventional tunable photonic crystals whose response time are below 10 millisecond (ms) have the mechanism of manipulating anisotropic materials electrically, but the anisotropy of materials limit the tunable range of wavelength below 2 nm. That is to say, no tunable photonic crystals in the prior art can achieve both fast response time and wide tunable range of wavelength at the same time.
Therefore, how to develop a photonic crystal which can achieve fast response time and wide tunable range of wavelength, and meanwhile, remain at a stable state without external power consumption is the primary topic in this field.
Therefore, in order to improve the problem described previously, a scope of the present invention is to provide a bistable photonic crystal which has a plurality of voids and each surface of void has a hydrophobic film. When the photonic crystal is immersed in a predetermined liquid, the photonic crystal has a first stable state and a second stable state. Wherein, the first stable state is to fill the plurality of voids with the predetermined liquid, and the second stable state is to exclude the predetermined liquid from the plurality of voids.
According to an embodiment, the photonic crystal comprises a surface, and the first stable state is to fill the plurality of voids with the predetermined liquid by coating a first liquid on the surface of the photonic crystal, and the surface tension of the first liquid is less than the surface tension of the predetermined liquid. Additionally, the second stable state is to exclude the predetermined liquid from the plurality of voids by coating a second liquid on the surface of the photonic crystal, and the surface tension of the second liquid is greater than the surface tension of the predetermined liquid.
In actual application, the predetermined liquid can be a 30 wt % ethanol aqueous solution, the first liquid can be a 99.5 wt % ethanol aqueous solution, and the second liquid can be pure water.
Accordingly, the photonic crystal of present invention applies the variation of capillary pressure generated by displacing different fluids to form the bidirectional flow for adjusting the liquid proportion within the voids. Meanwhile, the equivalent refractive index of the voids would be changed, and influencing the reflection and transmission spectra of photonic crystal, so that the color of photonic crystal can be changed widely and rapidly. Furthermore, owing to the energy barrier between the first and second stable states, the photonic crystal can remain at either of the two states without external power consumption.
Many other advantages and features of the present invention will be further understood by the detailed description and the accompanying sheet of drawings.
To facilitate understanding, identical reference numerals have been used, where possible to designate identical elements that are common to the figures.
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According to an embodiment, the photonic crystal 10 comprises a surface 16, and the first stable state is to fill the plurality of voids 12 with the predetermined liquid 18 by coating a first liquid 20 on the surface 16 of the photonic crystal 10 (as shown in
According to an embodiment, the predetermined liquid 18, the first liquid 20, and the second liquid 22 of the present invention can be a polar liquid or a nonpolar liquid, such as: water, alcohols, colloids, surfactants, or ionic liquids. Moreover, the predetermined liquid 18, the first liquid 20, and the second liquid 22 can be binary liquid mixtures or alcohol-water mixtures with different mass concentrations respectively.
In actual application, the present invention employs a 30 wt % ethanol aqueous solution as the predetermined liquid 18, a 99.5 wt % ethanol aqueous solution as the first liquid 20, and pure water as the second liquid 22. Additionally, these liquids can illustrate the working principles of the photonic crystal 10 at the first and second stable state.
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Due to the variation of the predetermined liquid 18 proportion within the voids 12, the refractive index of the voids 12 would be changed, and leading to the color variation of photonic crystal 10. In addition, owing to the energy barrier between the first and second stable states, the photonic crystal 10 can remain at either of the two states without external power consumption.
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In actual application, the hydrophobic film 14 on the surface of each void 12 is a heptadecafluoro-1,1,2,2-tetrahydrodecyltrichlorosilane self-assembled monolayer formed by a molecular vapor deposition process.
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Compared with conventional PhC, the photonic crystal of present invention applies the variation of capillary pressure generated by displacing different fluids to form the bidirectional flow for adjusting the liquid proportion within the voids. Meanwhile, the equivalent refractive index of the voids would be changed, and influencing the reflection and transmission spectra of photonic crystal, so that the color of photonic crystal can be changed widely and rapidly. Furthermore, owing to the energy barrier between the first and second stable states, the photonic crystal can remain at either of the two states without external power consumption.
The present invention makes a breakthrough in tunable photonic crystal method by displacing the liquid and gas to adjust the refractive index. Besides, the photonic crystal of present invention uses nano-capillary pressure as a driving force, making the velocity be 100 times faster than atmospheric pressure-driven method. In addition, the present invention also succeeds in coating the surface of voids with hydrophobic monolayer, meanwhile, forming the bidirectional flow for adjusting the liquid proportion within the voids with only 10 nm in diameter and 500 nm in depth.
In summary, the photonic crystal of present invention is the first one to achieve fast response time and wide tunable range of wavelength successfully, and meanwhile, remain at a stable state without external power consumption.
With the example and explanations above, the features and spirits of the invention will be hopefully well described. Those skilled in the art will readily observe that numerous modifications and alterations of the device may be made while retaining the teaching of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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100123059 | Jun 2011 | TW | national |