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Developing polymeric antireflective coatings

机译:研发聚合物抗反射涂料

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As polymers become more widely used in optics antireflective coatings need to be designed specifically to suit these new components. Modifications are being made to the current high temperature coating process to allow for inorganic metal oxides to be applied to polymer optics. This is not however the only hurdle that needs to be overcome to produce a satisfactory antireflective coating on polymers. Inorganic metal oxides and polymer components have a significant difference in thermal expansion meaning that defects such as delamination and cracking can occur. These defects significantly shorten the lifetime of the optical component.rnA new antireflective coating has been developed that has a similar thermal expansion coefficient to that of the polymer substrate, meaning that defects caused by thermal stress do not occur. These are polymeric coating with a refractive index of 1.31 and 1.34, lower than that of magnesium fluoride (MgF_2) at 1.38. These coatings have antireflective properties superior to those of current commercially available single layer inorganic antireflective coatings.rnPolymer antireflective coatings cannot be applied by vacuum deposition. Dip coating was evaluated as a method for film application. Dip coating allows control of the film thickness through varying the properties of the coating solution. It also allows for uniform films that can be inspected visually for variances.
机译:随着聚合物在光学中的广泛使用,抗反射涂层需要专门设计以适合这些新组件。对当前的高温涂覆工艺进行了修改,以允许将无机金属氧化物应用于聚合物光学器件。然而,这不是在聚合物上产生令人满意的抗反射涂层所需克服的唯一障碍。无机金属氧化物和聚合物组分的热膨胀差异很大,这意味着可能会发生分层和开裂等缺陷。这些缺陷大大缩短了光学组件的寿命。研发了一种新的抗反射涂层,其热膨胀系数与聚合物基材的热膨胀系数相似,这意味着不会发生由热应力引起的缺陷。这些是折射率为1.31和1.34的聚合物涂层,低于氟化镁(MgF_2)在1.38的折射率。这些涂层的抗反射性能优于目前市售的单层无机抗反射涂层。聚合物抗反射涂层不能通过真空沉积来施加。评价浸涂法作为涂膜的方法。浸涂允许通过改变涂料溶液的性质来控制薄膜厚度。它还允许制作均匀的薄膜,可以目视检查其是否有差异。

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