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Micro-Structured Two-Component 3D Metamaterials with Negative Thermal-Expansion Coefficient from Positive Constituents

机译:具有正成分负热膨胀系数的微结构两组分3D超材料

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摘要

Controlling the thermal expansion of materials is of great technological importance. Uncontrolled thermal expansion can lead to failure or irreversible destruction of structures and devices. In ordinary crystals, thermal expansion is governed by the asymmetry of the microscopic binding potential, which cannot be adjusted easily. In artificial crystals called metamaterials, thermal expansion can be controlled by structure. Here, following previous theoretical work, we fabricate three-dimensional (3D) two-component polymer micro-lattices by using gray-tone laser lithography. We perform cross-correlation analysis of optical microscopy images taken at different sample temperatures. The derived displacement-vector field reveals that the thermal expansion and resulting bending of the bi-material beams leads to a rotation of the 3D chiral crosses arranged onto a 3D checkerboard pattern within one metamaterial unit cell. These rotations can compensate the expansion of the all positive constituents, leading to an effectively near-zero thermal length-expansion coefficient, or over-compensate the expansion, leading to an effectively negative thermal length-expansion coefficient. This evidences a striking level of thermal-expansion control.
机译:控制材料的热膨胀具有重要的技术重要性。不受控制的热膨胀会导致结构和设备的故障或不可逆转的破坏。在普通晶体中,热膨胀是由微观结合电位的不对称性决定的,这不容易调节。在称为超材料的人造晶体中,热膨胀可以通过结构来控制。在此,根据先前的理论工作,我们通过使用灰度级激光光刻技术制作了三维(3D)两组分聚合物微晶格。我们执行在不同样品温度下拍摄的光学显微镜图像的互相关分析。导出的位移矢量场表明,双材料梁的热膨胀和由此产生的弯曲导致布置在一个超材料单胞内的3D棋盘图案上的3D手性十字的旋转。这些旋转可以补偿所有正成分的膨胀,从而导致有效的热长度膨胀系数接近零,或者过度补偿膨胀,从而导致有效的热长度膨胀系数为负。这证明了热膨胀控制的惊人水平。

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