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首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >Enhancement of signal-to-noise level by synchronized dual wavelength modulation for light emitting diode fluorimetry in a liquid-core-waveguide microfluidic capillary electrophoresis system
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Enhancement of signal-to-noise level by synchronized dual wavelength modulation for light emitting diode fluorimetry in a liquid-core-waveguide microfluidic capillary electrophoresis system

机译:在液芯波导微流毛细管电泳系统中,通过同步双波长调制提高发光二极管荧光的信噪比

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The signal-to-noise level of light emitting diode(LED)fluorimetry using a liquid-core-waveguide(LCW)-based microfluidic capillary electrophoresis system was significantly enhanced using a synchronized dual wavelength modulation(SDWM)approach.A blue LED was used as excitation source and a red LED as reference source for background-noise compensation in a microfluidic capillary electrophoresis(CE)system.A Teflon AF-coated silica capillary served as both the separation channel and LCW for light transfer,and blue and red LEDs were used as excitation and reference sources,respectively,both radially illuminating the detection point of the separation channel.The two LEDs were synchronously modulated at the same frequency,but with 180 deg-phase shift,alternatingly driven by a same constant current source.The LCW transferred the fluorescence emission,as well as the excitation and reference lights that strayed through the optical system to a photomultiplier tubea lock-in amplifier demodulated the combined signal,significantly reducing its noise level.To test the system,fluorescein isothiocyanate(FITC)-labeled amino acids were separated by capillary electrophoresis and detected by SDWM and single wavelength modulation,respectively.Five-fold improvement in S/N ratio was achieved by dual wavelength modulation,compared with single wavelength modulation;and over 100-fold improvement in S/N ratio was achieved compared with a similar LCW-CE system reported previously using non-modulated LED excitation.A detection limit(S/N=3)of 10 nM FITC-labeled arginine was obtained in this work.The effects of modulation frequency on S/N level and on the rejection of noise caused by LED-driver current and detector were also studied.
机译:同步双波长调制(SDWM)方法显着提高了基于液芯波导(LCW)的微流毛细管电泳系统的荧光二极管(LED)荧光法的信噪比水平。作为激发源,红色LED作为参考源,用于微流控毛细管电泳(CE)系统中的背景噪声补偿。特氟隆AF涂层硅胶毛细管同时用作光传输的分离通道和LCW,蓝色和红色LED分别是分别用作放射源和参考源,都径向照亮分离通道的检测点。两个LED以相同的频率同步调制,但相移180度,由相同的恒定电流源交替驱动。传输的荧光发射以及通过光学系统散射的激发光和参考光到光电倍增管中。为了测试该系统,用毛细管电泳分离了异硫氰酸荧光素(FITC)标记的氨基酸,分别通过SDWM和单波长调制进行了检测。信噪比提高了五倍通过双波长调制实现,与单波长调制相比;与之前报道的使用非调制LED激发的类似LCW-CE系统相比,信噪比提高了100倍以上。 3)本研究获得了10 nM FITC标记的精氨酸。还研究了调制频率对信噪比水平以及由LED驱动器电流和检测器引起的噪声抑制的影响。

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