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Label-free electrical detection of DNA hybridization using carbon nanotubes and graphene. 利用碳纳米管和石墨烯进行DNA杂交的无标记电检测。
Pub Date : 2010-01-01 DOI: 10.3402/nano.v1i0.5354
Dongliang Fu, Lain-Jong Li

The interface between biosystems and nanomaterials is emerging for detection of various biomolecules and subtle cellular activities. In particular, the development of cost-effective and sequence-selective DNA detection is urgent for the diagnosis of genetic or pathogenic diseases. Graphene-based nanocarbon materials, such as carbon nanotubes and thin graphene layers, have been employed as biosensors because they are biocompatible, extraordinarily sensitive, and promising for large-area detection. Electrical and label-free detection of DNA can be achieved by monitoring the conductance change of devices fabricated from these carbon materials. Here, the recent advances in this research area are briefly reviewed. The key issues and perspectives of future development are also discussed.

生物系统和纳米材料之间的界面正在出现,用于检测各种生物分子和微妙的细胞活动。特别是,开发具有成本效益和序列选择性的DNA检测对于遗传性或致病性疾病的诊断是迫切需要的。石墨烯基纳米碳材料,如碳纳米管和薄石墨烯层,已经被用作生物传感器,因为它们具有生物相容性,非常敏感,并且有望进行大面积检测。通过监测由这些碳材料制成的器件的电导变化,可以实现DNA的电检测和无标记检测。本文就这一研究领域的最新进展作一简要综述。并对未来发展的关键问题和前景进行了讨论。
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引用次数: 31
Hybrid micro-/nanogels for optical sensing and intracellular imaging. 用于光学传感和细胞内成像的混合微/纳米凝胶。
Pub Date : 2010-01-01 DOI: 10.3402/nano.v1i0.5730
Weitai Wu, Shuiqin Zhou

Hybrid micro-/nanogels are playing an increasing important part in a diverse range of applications, due to their tunable dimensions, large surface area, stable interior network structure, and a very short response time. We review recent advances and challenges in the developments of hybrid micro-/nanogels toward applications for optical sensing of pH, temperature, glucose, ions, and other species as well as for intracellular imaging. Due to their unique advantages, hybrid micro-/nanogels as optical probes are attracting substantial interests for continuous monitoring of chemical parameters in complex samples such as blood and bioreactor fluids, in chemical research and industry, and in food quality control. In particular, their intracellular probing ability enables the monitoring of the biochemistry and biophysics of live cells over time and space, thus contributing to the explanation of intricate biological processes and the development of novel diagnoses. Unlike most other probes, hybrid micro-/nanogels could also combine other multiple functions into a single probe. The rational design of hybrid micro-/nanogels will not only improve the probing applications as desirable, but also implement their applications in new arenas. With ongoing rapid advances in bionanotechnology, the well-designed hybrid micro-/nanogel probes will be able to provide simultaneous sensing, imaging diagnosis, and therapy toward clinical applications.

混合微/纳米凝胶由于其尺寸可调、表面积大、内部网络结构稳定、响应时间短等优点,在各种应用中发挥着越来越重要的作用。我们回顾了混合微/纳米凝胶在pH、温度、葡萄糖、离子和其他物质的光学传感以及细胞内成像方面的最新进展和挑战。由于其独特的优势,混合微/纳米凝胶作为光学探针在血液和生物反应器流体等复杂样品中化学参数的连续监测,化学研究和工业以及食品质量控制中引起了极大的兴趣。特别是,它们的细胞内探测能力能够监测活细胞随时间和空间的生物化学和生物物理学,从而有助于解释复杂的生物过程和发展新的诊断。与大多数其他探针不同,混合微/纳米凝胶还可以将其他多种功能结合到单个探针中。合理设计混合微/纳米凝胶不仅可以改善探测应用,而且可以实现其在新领域的应用。随着生物纳米技术的快速发展,精心设计的混合微/纳米凝胶探针将能够同时提供传感、成像诊断和临床应用治疗。
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引用次数: 63
Iron oxide-based nanomagnets in nanomedicine: fabrication and applications. 纳米医学中的氧化铁基纳米磁体:制造与应用。
Pub Date : 2010-01-01 Epub Date: 2010-02-22 DOI: 10.3402/nano.v1i0.4883
Meng Meng Lin, Hyung-Hwan Kim, Hyuck Kim, Mamoun Muhammed, Do Kyung Kim

Iron oxide-based nanomagnets have attracted a great deal of attention in nanomedicine over the past decade. Down to the nanoscale, superparamagnetic iron oxide nanoparticles can only be magnetized in the presence of an external magnetic field, which makes them capable of forming stable colloids in a physio-biological medium. Their superparamagnetic property, together with other intrinsic properties, such as low cytotoxicity, colloidal stability, and bioactive molecule conjugation capability, makes such nanomagnets ideal in both in-vitro and in-vivo biomedical applications. In this review, a chemical, physical, and biological synthetic approach to prepare iron oxide-based nanomagnets with different physicochemical properties was illustrated and compared. The growing interest in iron oxide-based nanomagnets with multifunctionalities was explored in cancer diagnostics and treatment, focusing on their combined roles in a magnetic resonance contrast agent, hyperthermia, and magnetic force assisted drug delivery. Iron oxides as magnetic carriers in gene therapy were reviewed with a focus on the sophisticated design and construction of magnetic vectors. Finally, the iron oxide-based nanomagnet also represents a very promising tool in particle/cell interfacing in controlling cellular functionalities, such as adhesion, proliferation, differentiation, and cell patterning, in stem cell therapy and tissue engineering applications.

过去十年来,基于氧化铁的纳米磁体在纳米医学领域引起了广泛关注。超顺磁性氧化铁纳米粒子只有在外部磁场存在的情况下才能被磁化,这使得它们能够在物理生物介质中形成稳定的胶体。它们的超顺磁性以及其他固有特性,如低细胞毒性、胶体稳定性和生物活性分子共轭能力,使这种纳米磁体成为体外和体内生物医学应用的理想选择。本综述对制备具有不同物理化学特性的氧化铁基纳米磁体的化学、物理和生物合成方法进行了说明和比较。在癌症诊断和治疗方面,人们对具有多功能性的氧化铁基纳米磁体的兴趣与日俱增,重点探讨了它们在磁共振造影剂、热疗和磁力辅助给药方面的综合作用。研究还回顾了铁氧化物作为基因治疗中的磁性载体,重点是磁性载体的复杂设计和构建。最后,在干细胞治疗和组织工程应用中,基于氧化铁的纳米磁体也是控制细胞功能(如粘附、增殖、分化和细胞图案化)的颗粒/细胞界面的一种非常有前途的工具。
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引用次数: 0
Nano reviews. Nano的评论。
Pub Date : 2010-01-01 Epub Date: 2010-02-22 DOI: 10.3402/nano.v1i0.5054
Vasudevanpillai Biju
W elcome to Nano Reviews, a new and unique Open Access journal in the Nanoscience, Na-notechnology, Nanobiotechnology, and Single-molecule research areas Á the 3NS field. Research results in the 3NS field are crucial to the fundamental challenges we face in the biomedical and environmental sciences, and give us the tools and the raw materials we need to support future technological development. At present, our knowledge in the 3NS field can be compared to the fusion and branching of flooding rivers, but it is now high time to gather and structure existent reference materials for the precise implementation of future research, education , and technology. The purpose of Nano Reviews is to organize and structure cutting edge and high-quality research in the 3NS field and disseminate the information under the Open Access publishing model, thus bringing the entire 3NS community together to accelerate scientific developments in our field. Synthesis of inorganic and organic nanomaterials and the integration of nanomaterials with biomolecules provide the basic building blocks within the 3NS field. The unique materials and technologies that have emerged during the advancement of 3NS research have been extensively utilized to untangle problems in the biomedi-cal field, indicating that a strong but largely concealed interplay exists among functional and structural nano-materials, micro-nanofabrication, theory, bioinformatics, bioconjugate chemistry, biophysics, biological chemistry, biotechnology, and medical and engineering sciences. This interplay is now at the heart of an explosion of 3NS and cross-disciplinary research results that are being published on a daily basis. As a next stage it is necessary to organize, structure, and unify our accomplishments to date. Given the distribution of countless and perpetual original research reports at present, comprehensive information in palatable forms is required for the complete utilization of important findings in each field. Nano Reviews offers a solution to this challenge. This was the rationale behind my proposal to launch the journal which I believe will enable us to equip students, researchers , and teachers with structured information within a single forum. In addition to in-depth review articles, Nano Reviews will publish Short Communications under the section 'Nano Express,' as well as Perspectives on cutting-edge research of the highest quality in the 3NS field to encourage brainstorming and cross-pollination. To publish in the 'Nano Express' section, please send us your very best research results in one of the 3NS fields. Nano Reviews is a completely interdisciplinary forum that has been launched to …
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引用次数: 12
Application of nanomaterials in two-terminal resistive-switching memory devices. 纳米材料在双端电阻开关存储器件中的应用。
Pub Date : 2010-01-01 DOI: 10.3402/nano.v1i0.5118
Jianyong Ouyang

Nanometer materials have been attracting strong attention due to their interesting structure and properties. Many important practical applications have been demonstrated for nanometer materials based on their unique properties. This article provides a review on the fabrication, electrical characterization, and memory application of two-terminal resistive-switching devices using nanomaterials as the active components, including metal and semiconductor nanoparticles (NPs), nanotubes, nanowires, and graphenes. There are mainly two types of device architectures for the two-terminal devices with NPs. One has a triple-layer structure with a metal film sandwiched between two organic semiconductor layers, and the other has a single polymer film blended with NPs. These devices can be electrically switched between two states with significant different resistances, i.e. the 'ON' and 'OFF' states. These render the devices important application as two-terminal non-volatile memory devices. The electrical behavior of these devices can be affected by the materials in the active layer and the electrodes. Though the mechanism for the electrical switches has been in argument, it is generally believed that the resistive switches are related to charge storage on the NPs. Resistive switches were also observed on crossbars formed by nanotubes, nanowires, and graphene ribbons. The resistive switches are due to nanoelectromechanical behavior of the materials. The Coulombic interaction of transient charges on the nanomaterials affects the configurable gap of the crossbars, which results into significant change in current through the crossbars. These nanoelectromechanical devices can be used as fast-response and high-density memory devices as well.

纳米材料以其独特的结构和性能引起了人们的广泛关注。纳米材料由于其独特的性能,已被证明具有许多重要的实际应用。本文综述了以金属和半导体纳米粒子、纳米管、纳米线和石墨烯等纳米材料为有源元件的双端电阻开关器件的制备、电学特性和存储应用。对于带有np的双端设备,主要有两种类型的设备架构。一种是三层结构,金属薄膜夹在两层有机半导体层之间,另一种是混合了NPs的单一聚合物薄膜。这些器件可以在具有显著不同电阻的两种状态之间电切换,即“开”和“关”状态。这使得该器件作为双端非易失性存储器件具有重要的应用。这些器件的电学性能会受到有源层和电极中的材料的影响。尽管电开关的机制一直存在争议,但一般认为电阻开关与NPs上的电荷存储有关。在由纳米管、纳米线和石墨烯带组成的横条上也观察到电阻开关。电阻开关是由材料的纳米机电特性决定的。瞬态电荷在纳米材料上的库仑相互作用影响了横条的可配置间隙,从而导致通过横条的电流发生显著变化。这些纳米机电器件也可以用作快速响应和高密度存储器件。
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引用次数: 47
Potential toxicity of superparamagnetic iron oxide nanoparticles (SPION). 超顺磁性氧化铁纳米颗粒的潜在毒性。
Pub Date : 2010-01-01 DOI: 10.3402/nano.v1i0.5358
Neenu Singh, Gareth J S Jenkins, Romisa Asadi, Shareen H Doak

Superparamagnetic iron oxide nanoparticles (SPION) are being widely used for various biomedical applications, for example, magnetic resonance imaging, targeted delivery of drugs or genes, and in hyperthermia. Although, the potential benefits of SPION are considerable, there is a distinct need to identify any potential cellular damage associated with these nanoparticles. Besides focussing on cytotoxicity, the most commonly used determinant of toxicity as a result of exposure to SPION, this review also mentions the importance of studying the subtle cellular alterations in the form of DNA damage and oxidative stress. We review current studies and discuss how SPION, with or without different surface coating, may cause cellular perturbations including modulation of actin cytoskeleton, alteration in gene expression profiles, disturbance in iron homeostasis and altered cellular responses such as activation of signalling pathways and impairment of cell cycle regulation. The importance of protein-SPION interaction and various safety considerations relating to SPION exposure are also addressed.

超顺磁性氧化铁纳米颗粒(SPION)被广泛用于各种生物医学应用,例如磁共振成像、药物或基因的靶向递送以及热疗。尽管SPION的潜在好处是相当大的,但仍有必要确定与这些纳米颗粒相关的任何潜在细胞损伤。除了关注细胞毒性,最常用的毒性决定因素是暴露于SPION,这篇综述还提到了研究DNA损伤和氧化应激形式的细微细胞改变的重要性。我们回顾了目前的研究,并讨论了SPION在有或没有不同表面涂层的情况下如何引起细胞扰动,包括肌动蛋白细胞骨架的调节、基因表达谱的改变、铁稳态的干扰和细胞反应的改变,如信号通路的激活和细胞周期调节的损伤。还讨论了蛋白质-SPION相互作用的重要性以及与SPION暴露有关的各种安全考虑。
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引用次数: 921
Colloidal quantum dot light-emitting devices. 胶体量子点发光装置。
Pub Date : 2010-01-01 Epub Date: 2010-07-07 DOI: 10.3402/nano.v1i0.5202
Vanessa Wood, Vladimir Bulović

Colloidal quantum dot light-emitting devices (QD-LEDs) have generated considerable interest for applications such as thin film displays with improved color saturation and white lighting with a high color rendering index (CRI). We review the key advantages of using quantum dots (QDs) in display and lighting applications, including their color purity, solution processability, and stability. After highlighting the main developments in QD-LED technology in the past 15 years, we describe the three mechanisms for exciting QDs - optical excitation, Förster energy transfer, and direct charge injection - that have been leveraged to create QD-LEDs. We outline the challenges facing QD-LED development, such as QD charging and QD luminescence quenching in QD thin films. We describe how optical downconversion schemes have enabled researchers to overcome these challenges and develop commercial lighting products that incorporate QDs to achieve desirable color temperature and a high CRI while maintaining efficiencies comparable to inorganic white LEDs (>65 lumens per Watt). We conclude by discussing some current directions in QD research that focus on achieving higher efficiency and air-stable QD-LEDs using electrical excitation of the luminescent QDs.

胶体量子点发光器件(qd - led)在具有提高色彩饱和度的薄膜显示器和具有高显色指数(CRI)的白色照明等应用中引起了相当大的兴趣。我们回顾了在显示和照明应用中使用量子点(QDs)的主要优势,包括它们的颜色纯度、溶液可加工性和稳定性。在重点介绍了过去15年来QD-LED技术的主要发展之后,我们描述了激发qd的三种机制——光激发、Förster能量转移和直接电荷注入——这些机制被用来制造QD-LED。我们概述了QD- led发展面临的挑战,如QD充电和QD薄膜中的QD发光猝灭。我们描述了光学下转换方案如何使研究人员能够克服这些挑战,并开发出包含量子点的商业照明产品,以实现理想的色温和高显色指数,同时保持与无机白光led相当的效率(>65流明每瓦)。最后,我们讨论了当前量子点研究的一些方向,重点是利用发光量子点的电激发来实现更高的效率和空气稳定的量子点led。
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引用次数: 341
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Nano reviews
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