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胶体中的逻辑电路。

Logical circuits in colloids.

作者信息

Roberts Nic, Raeisi Kheirabadi Noushin, Tsompanas Michail-Antisthenis, Chiolerio Alessandro, Crepaldi Marco, Adamatzky Andrew

机构信息

Unconventional Computing Laboratory, UWE, Bristol, UK.

Department of Engineering and Technology, University of Huddersfield, Huddersfield, UK.

出版信息

R Soc Open Sci. 2024 May 22;11(5):231939. doi: 10.1098/rsos.231939. eCollection 2024 May.

Abstract

Colloid-based computing devices offer remarkable fault tolerance and adaptability to varying environmental conditions due to their amorphous structure. An intriguing observation is that a colloidal suspension of ZnO nanoparticles in dimethylsulfoxide (DMSO) exhibits reconfiguration when exposed to electrical stimulation and produces spikes of electrical potential in response. This study presents a novel laboratory prototype of a ZnO colloidal computer, showcasing its capability to implement various Boolean functions featuring two, four and eight inputs. During our experiments, we input binary strings into the colloid mixture, where a logical 'True' state is represented by an impulse of an electrical potential. In contrast, the absence of the electrical impulse denotes a logical 'False' state. The electrical responses of the colloid mixture are recorded, allowing us to extract truth tables from the recordings. Through this methodological approach, we demonstrate the successful implementation of a wide range of logical functions using colloidal mixtures. We provide detailed distributions of the logical functions discovered and offer speculation on the potential impacts of our findings on future and emerging unconventional computing technologies. This research highlights the exciting possibilities of colloid-based computing and paves the way for further advancements.

摘要

基于胶体的计算设备由于其非晶态结构,具有显著的容错能力和对不同环境条件的适应性。一个有趣的现象是,氧化锌纳米颗粒在二甲基亚砜(DMSO)中的胶体悬浮液在受到电刺激时会发生重构,并产生电势尖峰作为响应。本研究展示了一种新型的氧化锌胶体计算机实验室原型,展示了其实现具有两个、四个和八个输入的各种布尔函数的能力。在我们的实验中,我们将二进制字符串输入到胶体混合物中,其中逻辑“真”状态由电势脉冲表示。相反,没有电脉冲表示逻辑“假”状态。记录胶体混合物的电响应,使我们能够从记录中提取真值表。通过这种方法,我们证明了使用胶体混合物成功实现了广泛的逻辑功能。我们提供了所发现逻辑函数的详细分布,并对我们的发现对未来和新兴的非常规计算技术的潜在影响进行了推测。这项研究突出了基于胶体计算的令人兴奋的可能性,并为进一步的进展铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de52/11285612/7c77e9d7503c/rsos.231939.f001.jpg

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