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用于检测注射泵给药输液失败的警报传感器的探索。

Exploration of an Alarm Sensor to Detect Infusion Failure Administered by Syringe Pumps.

作者信息

Wieduwilt Florian, Grünewald Jasmin, Ctistis Georgios, Lenth Christoph, Perl Thorsten, Wackerbarth Hainer

机构信息

Institut für Nanophotonik Göttingen e.V., Hans-Adolf-Krebs-Weg 1, 37077 Göttingen, Germany.

Physical Chemistry of Nanomaterials, Institute of Chemistry and Center for Interdisciplinary Nanostructure Science and Technology (CINSaT), University of Kassel, Heinrich-Plett-Straße 40, 34132 Kassel, Germany.

出版信息

Diagnostics (Basel). 2022 Apr 8;12(4):936. doi: 10.3390/diagnostics12040936.

Abstract

Incorrect medication administration causes millions of undesirable complications worldwide every year. The problem is severe and there are many control systems in the market, yet the exact molecular composition of the solution is not monitored. Here, we propose an alarm sensor based on UV-Vis spectroscopy and refractometry. Both methods are non-invasive and non-destructive as they utilize visible light for the analysis. Moreover, they can be used for on-site or point-of-care diagnosis. UV-Vis-spectrometer detect the absorption of light caused by an electronic transition in an atom or molecule. In contrast a refractometer measures the extent of light refraction as part of a refractive index of transparent substances. Both methods can be used for quantification of dissolved analytes in transparent substances. We show that a sensor combining both methods is capable to discern most standard medications that are used in intensive care medicine. Furthermore, an integration of the alarm sensor in already existing monitoring systems is possible.

摘要

每年,不正确的药物管理在全球范围内导致数百万起不良并发症。这个问题很严重,市场上有许多控制系统,但溶液的确切分子组成并未得到监测。在此,我们提出一种基于紫外可见光谱法和折射测定法的报警传感器。这两种方法都是非侵入性和非破坏性的,因为它们利用可见光进行分析。此外,它们可用于现场或即时诊断。紫外可见光谱仪检测由原子或分子中的电子跃迁引起的光吸收。相比之下,折射仪测量作为透明物质折射率一部分的光折射程度。这两种方法都可用于定量透明物质中溶解的分析物。我们表明,结合这两种方法的传感器能够识别重症监护医学中使用的大多数标准药物。此外,将报警传感器集成到现有的监测系统中是可行的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bafa/9032832/8ada797bd0da/diagnostics-12-00936-g001.jpg

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