| Literature DB >> 26295398 |
Keke Chang1, Ruipeng Chen2, Shun Wang3, Jianwei Li4, Xinran Hu5, Hao Liang6, Baiqiong Cao7, Xiaohui Sun8, Liuzheng Ma9, Juanhua Zhu10, Min Jiang11, Jiandong Hu12,13.
Abstract
The aim of this study was to develop a circuit for an inexpensive portable biosensing system based on surface plasmon resonance spectroscopy. This portable biosensing system designed for field use is characterized by a special structure which consists of a microfluidic cell incorporating a right angle prism functionalized with a biomolecular identification membrane, a laser line generator and a data acquisition circuit board. The data structure, data memory capacity and a line charge-coupled device (CCD) array with a driving circuit for collecting the photoelectric signals are intensively focused on and the high performance analog-to-digital (A/D) converter is comprehensively evaluated. The interface circuit and the photoelectric signal amplifier circuit are first studied to obtain the weak signals from the line CCD array in this experiment. Quantitative measurements for validating the sensitivity of the biosensing system were implemented using ethanol solutions of various concentrations indicated by volume fractions of 5%, 8%, 15%, 20%, 25%, and 30%, respectively, without a biomembrane immobilized on the surface of the SPR sensor. The experiments demonstrated that it is possible to detect a change in the refractive index of an ethanol solution with a sensitivity of 4.99838 × 10(5) ΔRU/RI in terms of the changes in delta response unit with refractive index using this SPR biosensing system, whereby the theoretical limit of detection of 3.3537 × 10(-5) refractive index unit (RIU) and a high linearity at the correlation coefficient of 0.98065. The results obtained from a series of tests confirmed the practicality of this cost-effective portable SPR biosensing system.Entities:
Keywords: ADC conversion time; biosensing system; linear CCD array; microcontroller; refractive index; surface plasmon resonance
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Year: 2015 PMID: 26295398 PMCID: PMC4570433 DOI: 10.3390/s150820511
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1The SPR biosensing platfrom designed by using a laser line generator, a linear CCD module, a microfluidic cell and corresponding clamps. (A) Schematic diagram of the principle of this SPR biosensing platform; (B) The top view of the overall structure of this SPR biosensing platform without an instrument enclosure; (C) The side view of Figure 1B.
Figure 2Schematic diagram of the interface system of this SPR biosensing system involving the SPR biosensor, the microcontroller and upper computer.
Memory allocations in the 25LC256 memory chip.
| Block 0 | Parameters area and the index of the record index area |
| Block 1 | Measurement result record Index area, which indicates the measurement result record number, valid status, number of channels, starting address, total of the data, |
| Block 2 | Measurement results area |
| …… | …… |
| Block 127 | Measurement results area |
Figure 3Timing diagram for the photoelectric signals acquisition of the line CCD array.
Figure 4Sensorgrams with inset calibration curve diagrams obtained for different ethanol solution concentrations. The sensorgram was obtained from concentrations of 5%, 8%, 15%, 20%, 25% and 30% ethanol in volume fraction, respectively. The lower right inset indicates the fitting curve established by delta response units with different standard ethanol concentrations ranging from 5% to 30%.