论文标题
巨型磁丝离效应和2D晶体悬浮液的可调色
Giant magneto-birefringence effect and tuneable colouration of 2D crystals' suspensions
论文作者
论文摘要
通过光 - 物质相互作用操纵光的漫长目标之一是实现了磁场可调色的,即所谓的磁性颜色效应,这对于光学,生化和医疗应用具有巨大的希望,这是由于其无接触式和无创性。可以通过磁场控制的双折射来实现此目标,其中颜色是通过透射偏振光的相相分量之间的干扰产生的。到目前为止,已经使用电场,材料手性和机械应变证明了双重可调色的着色,但是由于透明介质的磁磁响应弱或对可见的磁响应媒介(例如铁流体)的可见光,磁场控制仍然难以捉摸。在这里,我们展示了二维钴氧化钛的水性悬浮液的磁性色彩,该氧化钛氧化钛的氧化钛效应异常大。悬浮液的颜色可以通过低于0.8吨的中等磁场在可见范围内的两个以上的波长周期中进行调节。我们表明,这种巨大的磁性响应是由于极化光的偏移量特别大的稳定性(> 3 pi)所致,而这反过来又是大型液态晶体的较大的液体均值(三个较大的液态均值),这是由于较大的速度均高(三个级数)。 (delta n = 2 x 10^-4)以及我们对可见光的悬架的高透明度。这项工作为通过工程的磁性双折射开辟了新的途径,以实现可调色,并很容易扩展到其他磁性2D纳米晶体。所证明的效果可用于多种磁化应用,包括磁场传感器,波长可调的光学滤波器和透明打印。
One of the long sought-after goals in manipulation of light through light-matter interactions is the realization of magnetic-field-tuneable colouration, so-called magneto-chromatic effect, which holds great promise for optical, biochemical and medical applications due to its contactless and non-invasive nature. This goal can be achieved by magnetic-field controlled birefringence, where colours are produced by the interference between phase-retarded components of transmitted polarised light. Thus far birefringence-tuneable coloration has been demonstrated using electric field, material chirality and mechanical strain but magnetic field control remained elusive due to either weak magneto-optical response of transparent media or low transmittance to visible light of magnetically responsive media, such as ferrofluids. Here we demonstrate magnetically tuneable colouration of aqueous suspensions of two-dimensional cobalt-doped titanium oxide which exhibit an anomalously large magneto-birefringence effect. The colour of the suspensions can be tuned over more than two wavelength cycles in the visible range by moderate magnetic fields below 0.8 T. We show that such giant magneto-chromatic response is due to particularly large phase retardation (>3 pi) of the polarised light, which in its turn is a combined result of a large Cotton-Mouton coefficient (three orders of magnitude larger than for known liquid crystals), relatively high saturation birefringence (delta n = 2 x 10^-4) and high transparency of our suspensions to visible light. The work opens a new avenue to achieve tuneable colouration through engineered magnetic birefringence and can readily be extended to other magnetic 2D nanocrystals. The demonstrated effect can be used in a variety of magneto-optical applications, including magnetic field sensors, wavelength-tuneable optical filters and see-through printing.