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A Spin-Coated Hydrogel Platform Enables Accurate Investigation of Immobilized Individual Single-Walled Carbon Nanotubes

机译:旋转涂层的水凝胶平台可以精确调查固定的单壁碳纳米管

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Single-walled carbon nanotubes (SWCNTs) have been used in a variety of sensing and imaging applications over the past few years due to their unique optical properties. In the solution phase, SWCNTs are employed as near-infrared (NIR) fluorescence-based sensors of target analytes via modulations in emission intensity and/or wavelength. In an effort to lower the limit of detection, research has been conducted into isolating SWCNTs adhered to surfaces for potential single molecule analyte detection. However, it is known that SWCNT fluorescence is adversely affected by the inherently rough surfaces that are conventionally used for their observation (e.g., glass coverslip), potentially interfering with fluorescence-based analyte detection. Here, using a spin-coating method with thin films of alginate and SWCNTs, we demonstrate that a novel hydrogel platform can be created to investigate immobilized individual SWCNTs without significantly perturbing their optical properties as compared to solution-phase values. In contrast to the glass coverslip, which red-shifted DNA-functionalized (6,5)-SWCNTs by an average of 3.4 nm, the hydrogel platform reported emission wavelengths that statistically matched the solution-phase values. Additionally, the heterogeneity in the wavelength measurements, as determined from the width of created histograms, was reduced nearly by a factor of 3 for the SWCNTs in the hydrogel platform when compared to glass coverslips. Using long SWCNTs, i.e., those with an average length above the diffraction limit of our microscope, we show that a glass coverslip can induce optical heterogeneity along the length of a single SWCNT regardless of its surface functionalization. This is again significantly mitigated when examining the long SWCNTs in the hydrogel platform. Finally, we show that upon the addition of a model analyte (calcium chloride), the optical response can be spatially resolved along the length of a single SWCNT, enabling localized analyte detection on the surface of a single nanoscale sensor.
机译:单壁碳纳米管(SWCNT)由于其独特的光学性质,在过去几年中被用于各种传感和成像应用。在溶液阶段,单壁碳纳米管通过调制发射强度和/或波长被用作目标分析物的近红外(NIR)荧光传感器。为了降低检测极限,人们进行了分离粘附在表面的单分子碳纳米管的研究,以检测潜在的单分子分析物。然而,众所周知,SWCNT荧光受到传统上用于观察的固有粗糙表面(例如玻璃盖玻片)的不利影响,可能会干扰基于荧光的分析物检测。在这里,我们使用海藻酸钠和单壁碳纳米管薄膜的旋涂方法,证明可以创建一种新型水凝胶平台来研究固定化的单壁碳纳米管,而不会显著干扰其光学性质(与溶液相值相比)。玻璃盖玻片使DNA功能化(6,5)-SWCNT红移平均3.4nm,而水凝胶平台报告的发射波长与溶液相值在统计学上匹配。此外,与玻璃盖玻片相比,水凝胶平台中的单壁碳纳米管的波长测量不均匀性(根据创建的直方图宽度确定)几乎减少了3倍。通过使用长单壁碳纳米管,即平均长度超过显微镜衍射极限的单壁碳纳米管,我们发现,无论单壁碳纳米管的表面功能化程度如何,玻璃覆盖层都可以在其长度上诱导光学异质性。当检查水凝胶平台中的长单壁碳纳米管时,这种情况再次得到显著缓解。最后,我们表明,在添加模型分析物(氯化钙)后,光学响应可以沿单个SWCNT的长度进行空间解析,从而在单个纳米尺度传感器的表面上实现局部分析物检测。

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