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A review of the fabrication of photonic band gap materials based on cholesteric liquid crystals

机译:基于胆甾型液晶的光子禁带材料的研究进展

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Cholesteric liquid crystals (CLCs) are known to exhibit selective reflection of incident radiation due to their periodic helical structure, which makes them promising candidates for a myriad of different photonic applications. At normal incidence, CLCs reflect circularly polarized incident light of the same handedness as the cholesteric helix and of wavelength lambda between n(o)P and n(e)P, where n(o) and n(e) are the ordinary and extraordinary refractive indices, respectively, of the locally uniaxial structure, and P is the pitch of the helix. Thus, the reflection bandwidth Delta lambda is given by Delta lambda = Delta nP, where the birefringence Delta n = n(e) - n(o). Within the bandwidth, right-circularly polarized light is reflected by a right-handed helix, whereas left-circularly polarized light is transmitted. Outside the bandwidth, both polarization states are transmitted. Therefore, Delta lambda depends on Delta n. Moreover, Delta n is typically limited to 0.3-0.4 for colorless organic compounds, and Delta lambda is often <100 nm in the visible spectrum. Although a narrow reflection band is desirable for applications such as optical filters and thermal imaging, it also becomes a drawback in their applications, such as reflective displays, broadband circular polarizers and switchable mirrors. The purpose of this review is to take a closer look into how to broaden the reflection band in CLCs to overcome the above limitations for a wide variety of applications. This review covers the methodology that was used until recently, when the fabrication of photonic band gap (PBG) materials arose, based on CLCs. The mechanisms for broadening the reflection band have been reviewed. (C) 2016 Elsevier B.V. All rights reserved.
机译:已知胆甾型液晶(CLC)由于其周期性的螺旋结构而表现出对入射辐射的选择性反射,这使其成为无数不同光子应用的有希望的候选者。在法向入射时,CLC反射圆偏振入射光,该圆偏振入射光与胆甾型螺旋具有相同的惯性,并且波长介于n(o)P和n(e)P之间的λ,其中n(o)和n(e)是寻常的和非寻常的局部单轴结构的折射率分别为P和螺距。因此,反射带宽Δλ由Δλ=ΔnP给出,其中双折射Δn= n(e)-n(o)。在带宽内,右旋圆偏振光会反射右旋圆偏振光,而透射左旋圆偏振光。在带宽之外,两个极化状态都被传输。因此,Delta lambda取决于Delta n。此外,对于无色有机化合物,Δn通常限制为0.3-0.4,而Δλ在可见光谱中通常小于100 nm。尽管对于诸如滤光器和热成像的应用而言期望窄的反射带,但是在诸如反射显示器,宽带圆偏振器和可切换镜之类的应用中它也成为缺点。这篇综述的目的是仔细研究如何加宽CLC中的反射带,以克服各种应用中的上述限制。这篇综述涵盖了直到最近出现的基于CLC的制造光子带隙(PBG)材料的方法。扩大了反射带的机制已被综述。 (C)2016 Elsevier B.V.保留所有权利。

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