2025年汽车活性物质路线图。

IF 2.3 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER
Gerhard Gompper, Howard A Stone, Christina Kurzthaler, David Saintillan, Fernado Peruani, Dmitry Fedosov, Thorsten Auth, Cecile Cottin-Bizonne, Christophe Ybert, Eric Clement, Thierry Darnige, Anke Lindner, Raymond E Goldstein, Benno Liebchen, Jack Binysh, Anton Souslov, Lucio Isa, Roberto di Leonardo, Giacomo Frangipane, Hongri Gu, Bradley J Nelson, Fridtjof Brauns, M Cristina Marchetti, Frank Cichos, Veit-Lorenz Heuthe, Clemens Bechinger, Amos Korman, Ofer Feinerman, Andrea Cavagna, Irene Giardina, Hannah Jeckel, Knut Drescher
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引用次数: 0

摘要

活动和自主运动是许多生活和工程系统的基本方面。在这里,生物制剂的范围很广,从纳米马达、细胞骨架和细胞,到昆虫、鱼类、鸟类和人类。受生物活性系统的启发,各种类型的自主合成纳米和微机器被设计出来,为多功能、高响应、智能活性材料提供了基础。理解和设计活性物质的一个主要挑战是它们固有的非平衡性质,这是由于持续的能量消耗,这使自由能、详细平衡和时间反转对称等平衡概念失效。此外,活性物质的相互作用通常是非加和非互反的。生物制剂的一个重要方面是它们能够感知环境,处理这些信息,并相应地调整它们的运动。实现类似的功能是微型机器人系统工程的一个重要目标。随着运动活性物质的许多基本特性现在被很好地理解和控制,为研究复杂环境中运动的物理方面和机制、具有手性等新物理特征的系统的行为、新型微机器和微型机器人的发展奠定了基础。智能自推进粒子的涌现集体行为和群体,以及微生物系统的特殊特征。活动活性物质的自组织和动力学所涉及的现象和机制的巨大复杂性提出了重大挑战,这只能通过真正的跨学科努力来解决,包括生物学,化学,生态学,工程学,数学和物理学的科学家。《物理学杂志:凝聚态物质》的2024年活动活性物质路线图回顾了该领域的最新进展,并为这一迷人的研究领域的进一步进展提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The 2025 Motile Active Matter Roadmap.

Activity and autonomous motion are fundamental aspects of many living and engineering systems. Here, the scale of biological agents covers a wide range, from nanomotors, cytoskeleton, and cells, to insects, fish, birds, and people. Inspired by biological active systems, various types of autonomous synthetic nano- and micromachines have been designed, which provide the basis for multifunctional, highly responsive, intelligent active materials. A major challenge for understanding and designing active matter is their inherent non-equilibrium nature due to persistent energy consumption, which invalidates equilibrium concepts such as free energy, detailed balance, and time-reversal symmetry. Furthermore, interactions in ensembles of active agents are often non-additive and non-reciprocal. An important aspect of biological agents is their ability to sense the environment, process this information, and adjust their motion accordingly. It is an important goal for the engineering of micro-robotic systems to achieve similar functionality. With many fundamental properties of motile active matter now reasonably well understood and under control, the ground is prepared for the study of physical aspects and mechanisms of motion in complex environments, of the behavior of systems with new physical features like chirality, of the development of novel micromachines and microbots, of the emergent collective behavior and swarming of intelligent self-propelled particles, and of particular features of microbial systems. The vast complexity of phenomena and mechanisms involved in the self-organization and dynamics of motile active matter poses major challenges, which can only be addressed by a truly interdisciplinary effort involving scientists from biology, chemistry, ecology, engineering, mathematics, and physics. The 2024 motile active matter roadmap of Journal of Physics: Condensed Matter reviews the current state of the art of the field and provides guidance for further progress in this fascinating research area.

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来源期刊
Journal of Physics: Condensed Matter
Journal of Physics: Condensed Matter 物理-物理:凝聚态物理
CiteScore
5.30
自引率
7.40%
发文量
1288
审稿时长
2.1 months
期刊介绍: Journal of Physics: Condensed Matter covers the whole of condensed matter physics including soft condensed matter and nanostructures. Papers may report experimental, theoretical and simulation studies. Note that papers must contain fundamental condensed matter science: papers reporting methods of materials preparation or properties of materials without novel condensed matter content will not be accepted.
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