材料科学
纳米技术
模块化设计
神经形态工程学
软机器人
弹性体
同种类的
蓝图
计算机科学
软质材料
设计要素和原则
桥接(联网)
液晶
材料设计
各向异性
合并(版本控制)
领域(数学)
多物理
合理设计
软物质
超材料
机器人学
人工智能
智能材料
机械工程
树枝状大分子
仿生材料
解耦(概率)
自愈水凝胶
仿生学
生物相容性材料
作者
Yixuan Wang,Enjian He,Guoli Wang,Yen Wei,Yan Jiao Ji
摘要
Liquid crystal elastomers (LCEs) uniquely merge liquid crystal anisotropy with rubbery elasticity, positioning them as cornerstone materials for soft actuators. As the field is progressing from laboratory demonstrations toward practical applications in soft robotics and biomedical devices, it is moving beyond the simple, uniform deformations toward advanced spatially programmable properties and integrated functionalities. The design principles underlying these advances lie in heterogeneous integration, defined as the intentional spatial design of chemical, structural, or orientational differences across a unified LCE system, permitting precise programming of differentiated actuation directions, mechanical gradients, and sequential responsiveness unattainable in homogeneous LCEs. Heterogeneous integration pervades almost all advances in alignment techniques, network engineering, and device assembly. This review categorizes the diverse achievements into three hierarchical strategies: heterogeneity in orientation, heterogeneity in polymer network architecture, and heterogeneous modular assembly. We systematically summarize the mechanistic origins, achievable precision, and functional outputs of each approach. Furthermore, we outline future directions from discrete patterning to continuous gradients, from single-dimensional to multidimensional integration, and from static programming to adaptive evolution. This review establishes a coherent conceptual blueprint to guide the rational design of next-generation intelligent LCE systems.
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