研究领域
Physical Chemistry/Energy/Catalysis & Green Chemistry/Devices/Assembly & Nanochemistry/Structural Chemistry/Spectroscopy & Advanced Analysis
The research carried out in our group falls into two broad categories: (i) plasmonics and surface-enhanced Raman spectroscopy (SERS), and (ii) nanowire synthesis and nanowire-based sensing. In plasmonics we have two major goals: the first is to create plasmonic analogs of photovoltaics and photosynthetic systems. Recently, for example, we produced the first device ever reported which uses the electrons resulting from the decay of plasmons in gold nanorods to reduce hydrogen ions in water, and the positive charges left behind to oxidize water to oxygen gas. The device is a free running cell floating in water with light as its sole energy source. (Surface plasmons are collective conduction electron excitations in that occur in nanostructured metals and some other conductors.) SERS is also a plasmonic phenomenon. The excitation of plasmons concentrate electromagnetic radiation in nanometer-sized volumes – so-called hot spots. Molecules located in such hot spots can produce enormously enhanced spectra. Collaborating with colleagues in engineering, and especially the group of Professor Carl Meinhart, we pursue a number of research avenues often by combining microfluidics with SERS spectroscopy. For example, we have created very bright nanotags that can contain a peptide or an aptamer that can interact either with an analyte or the surface of a cell. The very bright SERS spectrum of the nanotag is then used to pick out, for example, cancer cells from among non-cancerous cells flowing in the microfluidic stream; or to detect and identify small analyte molecules at very low concentrations entering the microfluidic stream from the ambient atmosphere.
Our research work with semiconductor nanowires attempts to understand the transduction process that converts chemical events at the surface of nanowires, and especially nanowires functionalized with catalytic nanoparticles, to the electrical conductivity of the nanowire. Most often such nanowires are configured as field-effect transistors and the Gate voltage, that controls the electric field across the nanowire, is used to tune the nanowire’s “chemical potential”, thereby providing what is in essence an electronic means for functionalizing the nanowire’s surface.
Our most recent work draws a great deal of its inspiration from biomimetics, as we attempt to fabricate nano-electronic analogs of olfaction, both by creating nanowire-array-based electronic nose equivalents and multi-receptor SERS arrays that use the very highly sensitive character of SERS to look at the overall spectroscopic changes produced by small molecules interacting with aptamers linking plasmonic nanoparticles, then using data analysis paradigms to connect the observed changes to a specific analyte, in analogy to the manner in which the mammalian cognitive apparatus relates the pattern of the activation of the olfactory receptors with a given fragrance
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Andreou, C., Hoonejani, M.R., Barmi, M.R., Moskovits, M., and Meinhart, C.D. (2013). Rapid Detection of Drugs of Abuse in Saliva Using Surface Enhanced Raman Spectroscopy and Microfluidics. ACS Nano 7, 7157–7164.
Barmi, M.R., Andreou, C., Hoonejani, M.R., Moskovits, M., and Meinhart, C.D. (2013). Aggregation Kinetics of SERS-Active Nanoparticles in Thermally Stirred Sessile Droplets. Langmuir 29, 13614–13623.
Mubeen, S., Singh, N., Lee, J., Stucky, G.D., Moskovits, M., and McFarland, E.W. (2013). Synthesis of Chemicals Using Solar Energy with Stable Photoelectrochemically Active Heterostructures. Nano Letters 13, 2110–2115.
Pallaoro, A., Hoonejani, M.R., Braun, G.B., Meinhart, C., and Moskovits, M. (2013). Combined surface-enhanced Raman spectroscopy biotags and microfluidic platform for quantitative ratiometric discrimination between noncancerous and cancerous cells in flow. Journal of Nanophotonics 7, 073092
Mubeen, S., Lee, J., Singh, N., Moskovits, M., and McFarland, E.W. (2013). Stabilizing inorganic photoelectrodes for efficient solar-to-chemical energy conversion. Energy & Environmental Science 6, 1633.
Mubeen, S., Lee, J., Singh, N., Krämer, S., Stucky, G. D., and Moskovits, M. (2013) An Autonomous Photosynthetic Device in Which all Charge Carriers Derive from Surface Plasmons, Nature Nanotechnology 8, 247–251.
Lee, J., Mubeen, S., Hernandez-Sosa, G., Sun, Y., Toma, F. M., Stucky, G. D., and Moskovits, M. (2013) High-Efficiency Panchromatic Hybrid Schottky Solar Cells, Advanced Materials 25, 256–260.
White, L.M., Kim, M.H., Zhang, J., Kraemer, S., Yavuz, C.T., Moskovits, M., Wodtke, A.M., and Stucky, G.D. (2013). Phosphorus stimulated unidirectional growth of TiO2 nanostructures. Journal of Materials Chemistry A 1, 6091.
Moskovits, M. (2013) Persistent misconceptions regarding SERS, Physical Chemistry Chemical Physics 15, 5301.
Piorek, B. D., Lee, S. J., Moskovits, M., and Meinhart, C. D. (2012) Free-Surface Microfluidics/Surface-Enhanced Raman Spectroscopy for Real-Time Trace Vapor Detection of Explosives, Analytical Chemistry 84, 9700–9705.
Lee, J., Mubeen, S., Ji, X., Stucky, G. D., and Moskovits, M. (2012) Plasmonic Photoanodes for Solar Water Splitting with Visible Light, Nano Letters 12, 5014–5019.
Lee, S. J., and Moskovits, M. (2012) Remote Sensing by Plasmonic Transport, Journal of the American Chemical Society 134, 11384–11387.
Laurence, T. A., Braun, G. B., Reich, N. O., and Moskovits, M. (2012) Robust SERS Enhancement Factor Statistics Using Rotational Correlation Spectroscopy, Nano Letters 12, 2912–2917.
Mubeen, S., Zhang, S., Kim, N., Lee, S., Krämer, S., Xu, H., and Moskovits, M. (2012) Plasmonic Properties of Gold Nanoparticles Separated from a Gold Mirror by an Ultrathin Oxide, Nano Letters 12, 2088–2094.
Moskovits, M. (2012) How the localized surface plasmon became linked with surface-enhanced Raman spectroscopy, Notes and Records of the Royal Society 66, 195–203.
Zhang, F., Braun, G. B., Pallaoro, A., Zhang, Y., Shi, Y., Cui, D., Moskovits, M., Zhao, D., and Stucky, G. D. (2012) Mesoporous Multifunctional Upconversion Luminescent and Magnetic “Nanorattle” Materials for Targeted Chemotherapy, Nano Letters 12, 61–67.
Mubeen, S., Hernandez-Sosa, G., Moses, D., Lee, J., and Moskovits, M. (2011) Plasmonic Photosensitization of a Wide Band Gap Semiconductor: Converting Plasmons to Charge Carriers, Nano Letters 11, 5548–5552.
Kim, N. H., Lee, S. J., and Moskovits, M. (2011) Reversible Tuning of SERS Hot Spots with Aptamers, Advanced Materials 23, 4152–4156.
Livneh, T., Lilach, Y., Popov, I., Kolmakov, A., and Moskovits, M. (2011) Polarized Raman Scattering from a Single, Segmented SnO 2 Wire, The Journal of Physical Chemistry C 115, 17270–17277.
Mubeen, S., and Moskovits, M. (2011) Gate-Tunable Surface Processes on a Single-Nanowire Field-Effect Transistor, Advanced Materials 23, 2306–2312.