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A temperature-controlled stage for laser scanning confocal microscopy and case studies in materials science

机译:激光扫描共聚焦显微镜和材料科学案例研究的温度控制阶段

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摘要

If confocal microscopy is an ubiquitous tool in life science, its applications in chemistry and materials science are still, in comparison, very limited. Of particular interest in these domains is the use of confocal microscopy to investigate temperature-dependent phenomena such as self-assembly, diffusio- or thermophoresis, or crystal growth. Several hurdles must be solved to develop a temperature-controlled stage for laser scanning confocal microscopy, in particular regarding the influence of an elevated temperature gradient close to the microscope objective, which most people try very hard to avoid. Here we report the design of a temperature-controlled stage able to generate stable temperature gradients in both positive and negative temperature range and does not require use of liquid nitrogen. Our setup provides an excellent control of the temperature gradient, which can be coupled with a controlled displacement of the sample, making it useful in particular for a variety of solidification, chemistry, and interfacial problems. We illustrate the benefits of our setup with several case studies of interest in chemistry and materials science: the 3D real-time imaging of ice growth, the segregation of hard particles by growing crystals, the freezing behaviour of single emulsions, the self-shaping of oil droplets upon cooling, and the self-assembly of amphiphile molecules into helical structures. These results show how confocal microscopy coupled with a temperature-controlled stage that provides a controlled temperature gradient is a welcome addition to the toolkit of chemists and materials scientists.
机译:如果共聚焦显微镜是普遍存在的生命科学工具,其在化学和材料科学中的应用仍然非常有限。对这些结构域特别感兴趣的是使用共聚焦显微镜来研究温度依赖性现象,如自组装,扩散或热孔,或晶体生长。必须解决几个障碍以开发用于激光扫描共聚焦显微镜的温度控制阶段,特别是关于升高的温度梯度接近显微镜物镜的影响,大多数人尝试很难避免。在这里,我们报告了能够在正极和负温度范围内产生稳定温度梯度的温度控制阶段的设计,并且不需要使用液氮。我们的设置提供了对温度梯度的极好控制,其可以与样品的受控位移联接,使其特别适用于各种凝固,化学和界面问题。我们说明了我们对化学和材料科学兴趣的几个案例研究的好处:冰增长的3D实时成像,通过生长晶体来分离硬颗粒,单一乳液的冷冻行为,自模冷却时油滴,以及两亲分子的自组装成螺旋结构。这些结果表明,共聚焦显微镜如何加上提供受控温度梯度的温度控制阶段,这是一个受到化学家和材料科学家的工具包的受欢迎补充。

著录项

  • 来源
    《Ultramicroscopy》 |2018年第2018期|共11页
  • 作者单位

    CNRS St Gobain CREE UMR3080 Lab Synth &

    Fonctionnalisat Ceram F-84306 Cavaillon France;

    Univ Paris 06 ESPCI CNRS SIMM UMR 7615 Paris France;

    CNRS St Gobain CREE UMR3080 Lab Synth &

    Fonctionnalisat Ceram F-84306 Cavaillon France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 光学仪器;
  • 关键词

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