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具有自适应机械记忆和顺序逻辑的智能电活性材料系统。

Intelligent electroactive material systems with self-adaptive mechanical memory and sequential logic.

作者信息

El Helou Charles, Hyatt Lance P, Buskohl Philip R, Harne Ryan L

机构信息

Department of Mechanical Engineering, The Pennsylvania State University, University Park, PA 16802.

Functional Materials Division, Materials and Manufacturing Directorate, Air Force Research Laboratory, Wright-Patterson AFB, OH 45433.

出版信息

Proc Natl Acad Sci U S A. 2024 Apr 2;121(14):e2317340121. doi: 10.1073/pnas.2317340121. Epub 2024 Mar 25.

Abstract

By synthesizing the requisite functionalities of intelligence in an integrated material system, it may become possible to animate otherwise inanimate matter. A significant challenge in this vision is to continually sense, process, and memorize information in a decentralized way. Here, we introduce an approach that enables all such functionalities in a soft mechanical material system. By integrating nonvolatile memory with continuous processing, we develop a sequential logic-based material design framework. Soft, conductive networks interconnect with embedded electroactive actuators to enable self-adaptive behavior that facilitates autonomous toggling and counting. The design principles are scaled in processing complexity and memory capacity to develop a model 8-bit mechanical material that can solve linear algebraic equations based on analog mechanical inputs. The resulting material system operates continually to monitor the current mechanical configuration and to autonomously search for solutions within a desired error. The methods created in this work are a foundation for future synthetic general intelligence that can empower materials to autonomously react to diverse stimuli in their environment.

摘要

通过在集成材料系统中合成智能所需的功能,使无生命的物质具有活性成为可能。这一设想面临的一个重大挑战是以分散的方式持续感知、处理和存储信息。在此,我们介绍一种在软机械材料系统中实现所有此类功能的方法。通过将非易失性存储器与连续处理相结合,我们开发了一种基于顺序逻辑的材料设计框架。柔软的导电网络与嵌入式电活性致动器互连,以实现自适应行为,促进自主切换和计数。设计原理在处理复杂性和存储容量方面进行了扩展,以开发一种能够基于模拟机械输入求解线性代数方程的8位机械材料模型。由此产生的材料系统持续运行,以监测当前的机械配置,并在期望的误差范围内自主寻找解决方案。这项工作中创建的方法是未来通用合成智能的基础,这种智能可以使材料能够自主地对其环境中的各种刺激做出反应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2028/10998560/0313a430ffee/pnas.2317340121fig01.jpg

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