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Organic and Hybrid Sensors and Bioelectronics XI最新文献

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Front Matter: Volume 10738 封面:10738卷
Pub Date : 2018-10-16 DOI: 10.1117/12.2515246
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引用次数: 0
Light-induced extracellular stimulation using organic electrolytic photocapacitors (Conference Presentation) 利用有机电解光电容器进行光诱导细胞外刺激(会议报告)
Pub Date : 2018-09-18 DOI: 10.1117/12.2322613
E. Głowacki
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引用次数: 0
The photophysics of non-genetic opto stimulation (Conference Presentation) 非遗传光刺激的光物理学(会议报告)
Pub Date : 2018-09-18 DOI: 10.1117/12.2320405
G. Lanzani
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引用次数: 0
Plants: Electronics interface (Conference Presentation) 工厂:电子接口(会议报告)
Pub Date : 2018-09-18 DOI: 10.1117/12.2320242
E. Stavrinidou
{"title":"Plants: Electronics interface (Conference Presentation)","authors":"E. Stavrinidou","doi":"10.1117/12.2320242","DOIUrl":"https://doi.org/10.1117/12.2320242","url":null,"abstract":"","PeriodicalId":366222,"journal":{"name":"Organic and Hybrid Sensors and Bioelectronics XI","volume":"16 1","pages":"0"},"PeriodicalIF":0.0,"publicationDate":"2018-09-18","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":null,"resultStr":null,"platform":"Semanticscholar","paperid":"125331750","PeriodicalName":null,"FirstCategoryId":null,"ListUrlMain":null,"RegionNum":0,"RegionCategory":"","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":"","EPubDate":null,"PubModel":null,"JCR":null,"JCRName":null,"Score":null,"Total":0}
引用次数: 0
Imaging the effects of ionic transport and morphology on device performance in organic electrochemical transistors (Conference Presentation) 有机电化学晶体管中离子输运和形态对器件性能影响的成像(会议报告)
Pub Date : 2018-09-18 DOI: 10.1117/12.2321659
R. Giridharagopal, Lucas Q. Flagg, Jiajie Guo, D. Ginger
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引用次数: 0
Bioinspired design of conductive peptide nanofibers (Conference Presentation) 导电肽纳米纤维的仿生设计(会议报告)
Pub Date : 2018-09-18 DOI: 10.1117/12.2322688
A. Hochbaum
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引用次数: 0
Roll-to-roll production of a microfluidic platform and its functionalization by means of digital printing technologies for gas and fluid sensors (Conference Presentation) 微流控平台的卷对卷生产及其应用于气体和流体传感器的数字印刷技术的功能化(会议报告)
Pub Date : 2018-09-18 DOI: 10.1117/12.2321306
C. Eschenbaum, A. Habermehl, Robert Huber, U. Lemmer, Noah Strobel, A. Mertens, G. Hernández-Sosa
The individualized functionalization of mass-produced microstructures is still challenging for the process technology. Here, a rroll-to-roll based process hot embossing is presented for the production of microfluidic structures by means of hot embossing is presented. The resulting microfluidic channels are functionalized modified with different materials. Thereby, digital printing technologies such as aAerosoljet or inkjet are used. This approach allows for mass production of microfluidic channels and their the individualized individual functionalizationfunctionalization of mass produced microfluidic channels. The encapsulation of the channels also takes placeis realized in an R2R-based thermal bonding process without adding any solvent or adhesive.Taking account ofUsing this approach, several sensor systems for gas and / or fluid detection could be demonstrated. Surface -eEnhanced Raman Scattering scattering (SERS) with amplification enhancement factors of up to 107 [1] is demonstrated by printing gold nanoparticles into the microfluidic channel. We evaluate the printed SERS structures using solutions of rhodamine 6G and adenosine as exemplary analytes.Furthermore, these channels could be functionalized with different fluorescent organic semiconductors. Their fluorescence intensity is quenched in the presence of a nitroaromatic compounds. By using different materials simultaneously, we are able to measure a fingerprint like pattern of different analytes, which we evaluated by means ofusing pattern recognition algorithms. This method can be used both in the gas phase (electronic nose) and in fluids (electronic tongue) for the detection of nitroaromatic compounds [2,3]. With the opto-electronic nose, we were able to reach detections limits below 1ppb. [1] A. Habermehl et al, Sensors 17, 2401 (2017).[2] N. Bolse et al, Flexible and Printed Electronics 2, 024001 (2017)[3] N. Bolse et al, ACS Omega 2 (10), 6500-6505 (2017)
批量生产的微结构的个性化功能化对工艺技术来说仍然是一个挑战。本文提出了一种基于卷对卷热压印的微流控结构生产方法。所得到的微流控通道被不同的材料功能化修饰。因此,数字印刷技术,如aAerosoljet或喷墨被使用。这种方法允许大规模生产微流控通道,以及大规模生产微流控通道的个性化功能化。通道的封装也可以在基于r2r的热粘合过程中实现,而无需添加任何溶剂或粘合剂。考虑到使用这种方法,可以演示几种用于气体和/或流体检测的传感器系统。通过将金纳米颗粒打印到微流体通道中,证明了表面增强拉曼散射(SERS)的放大增强因子高达107[1]。我们使用罗丹明6G和腺苷溶液作为示例分析物来评估打印的SERS结构。此外,这些通道可以用不同的荧光有机半导体功能化。它们的荧光强度在硝基芳香族化合物的存在下被猝灭。通过同时使用不同的材料,我们能够测量不同分析物的指纹模式,并通过模式识别算法对其进行评估。该方法既可用于气相(电子鼻),也可用于流体(电子舌)中硝基芳香族化合物的检测[2,3]。使用光电鼻,我们能够达到低于1ppb的检测极限。[1]张建军,张建军,张建军,等。遥感技术与应用,2017,32 (1):1 - 4N. Bolse等人,柔性和印刷电子,2024001 (2017)[3]N. Bolse等人,ACS Omega 2 (10), 6500-6505 (2017)
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引用次数: 1
Fully printed light-emitting electrochemical cells comprising biomaterials (Conference Presentation) 由生物材料组成的全印刷发光电化学电池(会议报告)
Pub Date : 2018-09-18 DOI: 10.1117/12.2320285
Johannes Zimmermann, Luca Porcarelli, Tobias Rödlmeier, A. Sanchez-Sanchez, D. Mecerreyes, G. Hernández-Sosa
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引用次数: 0
Neuromorphic devices based on organic mixed conductors (Conference Presentation) 基于有机混合导体的神经形态器件(会议报告)
Pub Date : 2018-09-18 DOI: 10.1117/12.2320100
Paschalis Gkoupidenis, Dimitrios K. Koutsouras, G. Malliaras
Neuromorphic devices and architectures offer novel ways of data manipulation and processing, especially in data intensive applications. At a single device level, various forms of neuroplasticity have been emulated over the past years, mainly with inorganic devices. The implementation of neuroplasticity functions with these devices also enabled applications at a circuit level related to machine learning such as feature or pattern recognition. Although the field of organic-based neuromorphic devices and circuits is still at its infancy, organic materials may offer attractive features for neuromorphic engineering. Over the past years for example, a few simple neuromorphic functions have been demonstrated with biological substances and bioelectronic devices. In this work various neuromorphic devices will be presented that are based on organic mixed conductors, materials that are traditionally used in organic bioelectronics. A prominent example of a device in bioelectronics that exploits mixed conductivity phenomena is the organic electrochemical transistor (OECT). Devices based on OECTs show volatile and tunable dynamics suitable for the emulation of short-term synaptic plasticity functions. Chemical synthesis allows for the introduction of non-volatile phenomena suitable for long-term memory functions. The device operation in common electrolyte permits the definition of spatially distributed multiple inputs at a single device level. The presence of a global electrolyte in an array of devices also allows for the homeostatic or global control of the array. Global electrical oscillations can be used as global clocks that frequency-lock the local activity of individual devices in analogy to the global oscillations in the brain. Finally, “soft” interconnectivity through the electrolyte can be defined, a feature that paves the way for parallel interconnections between devices with minimal hard-wired connections.
神经形态设备和架构提供了新颖的数据操作和处理方式,特别是在数据密集型应用中。在单一设备水平上,各种形式的神经可塑性在过去的几年里已经被模拟,主要是用无机设备。这些设备的神经可塑性功能的实现也使与机器学习相关的电路级应用,如特征或模式识别成为可能。尽管基于有机的神经形态器件和电路领域仍处于起步阶段,但有机材料可能为神经形态工程提供有吸引力的特性。例如,在过去的几年里,一些简单的神经形态功能已经用生物物质和生物电子设备证明了。在这项工作中,将提出各种基于有机混合导体的神经形态器件,这些材料传统上用于有机生物电子学。生物电子学中利用混合电导率现象的器件的一个突出例子是有机电化学晶体管(OECT)。基于OECTs的器件表现出易变和可调的动态特性,适合模拟短期突触可塑性功能。化学合成允许引入适合长期记忆功能的非挥发性现象。该器件在普通电解液中的操作允许在单个器件级定义空间分布的多个输入。在器件阵列中存在全局电解质也允许对阵列进行稳态或全局控制。全球电振荡可以用作全球时钟,以频率锁定单个设备的局部活动,类似于大脑的全球振荡。最后,可以定义通过电解质的“软”互连,这一特性为设备之间的并行互连铺平了道路,而设备之间的硬连线连接最少。
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引用次数: 0
Printed wireless pressure sensor (Conference Presentation) 印刷无线压力传感器(会议报告)
Pub Date : 2018-09-18 DOI: 10.1117/12.2318214
Yichen Zhai, Moran Amit, T. Ng
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引用次数: 0
期刊
Organic and Hybrid Sensors and Bioelectronics XI
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