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Quantum dot (QD) based nanomaterials are very promising materials for the fabrication of optoelectronic devices like solar cells, light emitting diodes (LEDs), and photodetectors as well as as reporters for chemo- and biosensing and bioimaging. Many of These applications involve the monitoring of changes in photoluminescence intensity and energy transfer processes which can strongly depend on excitation wavelength or energy. In this work, we analyzed the excitation energy dependence (EED) of the photoluminescence quantum yields (PL QYs) and decay kinetics and the circular dichroism (CD) spectra of CdSe/CdS core/shell QDs with different thicknesses of the surface passivation shell. Our results demonstrate a strong correlation between the spectral position of local maxima observed in the EED of PL QY and the zero-crossing points of the CD profiles. Theoretical analysis of the energy band structure of the QDs with effective mass approximation suggests that these structures could correspond to exciton energy levels. This underlines the potential of CD spectroscopy for the study of electronic energy structure of chiroptically active nanocrystals which reveal quantum confinement effects.
Lanthanide-doped upconversion nanoparticles (UCNPs) are of great interest for biomedical applications. Currently, the applicability of UCNP bionanotechnology is hampered by the generally low luminescence intensity of UCNPs and inefficient energy Transfer from UCNPs to surface-bound chromophores used e.g. for photodynamic therapy or analyte sensing. In this work, we address the low-Efficiency issue by developing versatile core-Shell nanostructures, where high-concentration sensitizers and activators are confined in the core and Shell Region of representative hexagonal NaYF2:Yb,Er UCNPs. After Doping concentration optimization, the sensitizer-rich core is able to harvest/accumulate more excitation energy and generate almost one order of Magnitude higher luminescence intesity than conventional homogeneously doped nanostructures. At the same time, the activator Ions located in the Shell enable a ~6 times more efficient resonant energy Transfer from UCNPs to surface-bound acceptor dye molecules due to the short distance between donor-acceptor pairs. Our work provides new insights into the rational design of UCNPs and will greatly encrease the General applicability of upconversion nanotechnologies.
The implementation of fluorescent methods is of outstanding importance in the field of optical chemical sensor Technology and biosciences. Their bioanalytical applications are manifold including fluorescence microscopy, fluorescence in situ hybridization, DNA sequencing, fluorescence-activated cell sorting, immunoassays, analysis of DNA and Protein microarrays, and quantitative PCR, just to name a few examples. Particularly, fluorescence microscopy is a valuable method in the versatile field of biomedical imaging methods which nowadays utilizes different fluorescence Parameters like emission wavelength/Color and lifetime for the discrimination between different targets. Sectional Images are available with confocal microscopes. Tissue, cells or single cellular compartments can be stained and visualized with fluorescent dyes and biomolecules can be selectively labeled with fluorescent dyes to Monitor biomolecular interactions inside cells or at Membrane bound receptors.
On the other hand , fluorophores can act as indicator (or "molecular probe") to visualize intrinsically colorless and non-fluorescent ionic and neutral analytes such as pH, Oxygen (pO2), metal ions, anions, hydrogen peroxide or bioactive small organic molecules such as Sugars or nucleotides. Thereby, their photoluminescent properties (fluorescence or phoporescence intensity, exitation and/or Emission wavelength, emission lifetime or anisotropy) respond to the presence of these species in their immediate Environment. In general, the use of luminescent probes has the advantage that they can be delivered directly into the sample, and detected in a contactless remote mode. By now, these probes are often encapsulated in different types of nanoparticles (NPs) made from (biodegradable) organic polymers, biopolymers or inorganic materials like silica or bound to their surface.
Immunoassays are an important field of in vitro diagnostics, as they allow for a fast and highly sensitive detection of many biologically and diagnostically relevant analytes such as proteins, hormones, and pharmaceuticals. Fluorescence immunoassays (FIA), where the antibodies and/or antigens are labeled with luminescent reporters, can be easily read out directly by measuring the intensity, decay time, or polarization of the emitted light. Moreover, FIA enable the simultaneous detection of different analytes within a single sample (multiplexing) and are particularly suited for point-of-care (POC) diagnostics and high throughput screening (HTS). The application of luminescent nanoparticles as reporters in FIA could further improve assay sensitivity, as several 100 to 1000 luminophores can be incorporated or attached to such nanoscale carriers, thereby amplifying their absorption and/or emission signals simply by increasing the number of dye molecules.
Although dye-loaded polymeric and silica nanoparticles have been increasingly used as reporters in immunoassays, achievable signal amplification factors related to the use of particle reporters are still difficult to predict and quantify, which also hampers the comparability of different nanoscale reporters. To overcome this challenge, we performed a systematic comparison of spectroscopically and analytically well characterized particle labels in a homogeneous sandwich immunoassay format for the detection of the common inflammation biomarker C-reactive protein (CRP). Hereby, we studied the influence of particle parameters like size, surface chemistry, and dye loading concentration for different dye classes, i.e. organic dyes and metal ligand complexes, varying in their signal-relevant spectroscopic properties (molar absorption coefficients, photoluminescence quantum yields, Stokes shifts, and emission decay times), for different detection schemes (direct read-out vs. dye extraction). The emitters applied were chosen to be commercially available for a reasonable price, to absorb between 400 nm and 450 nm, and to emit in the visible region, as these parameters are accessible with most established microplate readers. Based upon our findings, we highlight the advantages and limitations of nanoscale reporters with respect to the choice of suitable particles, encoding dyes, and detection strategies, and compare the achievable sensitivities and dynamic ranges for our CRP model immunoassay.
New Approaches for the Quantification of Functional Groups on Micro- and Nanoparticle Surfaces
(2017)
Nanometer- and micrometer-sized particles are increasingly used as tolls in (bio)analytics with typical applications being carriers for e.g., drugs or dye molecules for use as multichromophoric reporters for signal amplification in optical assays, platforms for DNA sequencing as well as nanosensors and targeted probes for bioimaging studies.
The application of such particles in the material and life sciences is closely linked to their size (and size distribution), shape, colloidal stability, biocompatibility, and ease of subsequent functionalization, e.g., with linkers, targeting ligands, and sensor molecules. The latter requires knowledge of the number of groups effectively accessible for subsequent coupling reactions and hence, selective and sensitive methods of analysis. Ideally, these methods are be robust, reliable, fast, performable with inexpensive equipment, and can be employed for the characterization of a broad variety of particle systems independent of their optical properties, i.e., scattering or the presence of encoding dyes.
In this respect, we studied a variety of conventional and newly developed labels for optical readout on self-made particles with varying surface group density, utilizing e.g., changes in intensity and/or color of absorption and/or emission. We focus here on the development of a platform of cleavable and multimodal labels for optical assays which consist of a cleavable linker and an optically active reporter moiety. In contrast to conventional reporters measured directly at the particle surface, which are prone to signal distortions by scattering and encoding dyes, these cleavable labels can be detected colorimetrically or fluorometrically both bound at the particle surface and after quantitative cleavage of the linker in the transparent supernatant. Moreover, for heteroatom-containing reporters, they enable straightforward validation by method comparison with elemental analysis, ICP-OES or ICP-MS.
Here, we present representative examples of our newly synthesized cleavable and multimodal labels and their application as reporters for the quantification of amino, thiol and carboxy surface groups on different nanomaterials and compare these results with measurements using conventional optical labels and results from measurements providing the total number of surface groups.
Polymer nanoparticles are of increasing importance for a wide range of applications in the material and life sciences. This includes their application as carriers for e.g., analyte-responsive ligands for DNA sequencing platforms, drugs as well as dye molecules for use as multichromophoric reporters for signal enhancement in optical assays or the fabrication of nanosensors and targeted probes in bioimaging studies.
Application-relevant properties of nanometer- and micrometer-sized particles (NP) include their size (and size distribution), colloidal stability, biocompatibility, and ease of subsequent functionalization, e.g., with linkers, sensor molecules, and targeting ligands. In this respect, the knowledge of the chemical nature, the total number of surface groups and the number of groups accessible for subsequent coupling reactions with differently sized optical labels or biomolecules is mandatory. This requires robust, reliable and validated methods, which can be employed for the characterization of a broad variety of particle systems independent of their optical properties, i.e., scattering or the presence of encoding dyes, and can be preferably performed specifically, sensitively, and fast with inexpensive equipment. Particularly attractive methods are here straightforward colorimetric, and fluorometric assays. In this respect, we studied a variety of conventional labels for optical readout, utilizing e.g., a change in intensity and/or color of absorption and/or emission. While in common assays, most reporters are measured directly at the particle surface, which can easily lead to signal distortions by scattering and encoding dyes, we focus on the development of cleavable and multimodal labels. These labels are detectable both bound at the particle surface and after cleavage of a linker unit in the supernatant with different analytical methods like fluorometry together with elemental analysis, ICP-OES or ICP-MS for straightforward method validation by method comparison. Here, we present our newly-synthesized cleavable labels and their application for photometric quantification of amino, thiol and carboxy surface groups on different types of nanomaterials and compare the results obtained from surface group analysis relying on conventional labels.
Semiconductor nanocrystals with a spherical (QDs) core and a spherical or a rod-shaped Shell, u.a., so-called Quantum dot-Quantum rods (QDQRs) are increasingly used as fluorescent Reporters or optically active components in the life and material science, e.g., in solid state lightening including Plasma Displays. (1,2) Morever, there is an increasing interest in materials with emission >800 nm for bioanalysis, medical diagnostics, and safety barcodes. Prerequisites for the mechanistic understanding of nonradiativ decay channels needed for the rational design of improved nanomaterials and the comparison of material Performance are reliable fluorescence measurements and validated methods for the assessment of their surface chemistry. (3,4) The latter is of particular importance for nanocrystalline Emitters, where surface states and the accessibility of emissive states by quenchers largely control photoluminescence properties. (5) Here, we present results from systematic spectroscopic studies including absolutely measured photolumunescence Quantum yields of different vissible and NIR emisisve QD and QDQRs Systems of varying particle architecture size and surface chemistries in Dispersion and embedded in salt crystals. (6,7)
Laser ablation with inductively coupled plasma is still more used in life science as biology and biomedicine and the utilization of metals and proteins determination simultaneously is also growing up. We have developed a new strategy of labeling of antibody (it can specific binds to proteins) by nanoparticles and quantum dots which is composed of thousands of atoms and thus increases the sensitivity enormously and of course decreases the Limit of detection, compare to lanthanoids labeling. The ability of successfully tagged antibodies bound to Antigen (protein) was proved by dot blot on membrane imaged by LA-ICP-MS.
At the core of luminescence color and lifetime Tuning of rare earth doped upconverting nanoparticles (UCNPs), is the understanding of the Impact of the particle architecture for commonly used sensitizer (S) and activator (A) Ions. In this respect, a series of core@Shell NaYF4 UCNPs doped with Yb3+ and Ho3+ ions are presented here, where the same dopant concentrations are distributed in different particle architectures following the scheme: YbHo core and YbHo@..., ...@YbHo, Yb@Ho, Ho@Yb, YbHo@Yb, and Yb@YbHo core-Shell NPs. As refealed by quantitative steady-state and time-resolved luminescence studies, the relative spatial Distribution of the A and S ions in the UCNPs and their protection from surface quenching has a critical Impact on ther luminescence characteristics. Although the increased amount of Yb3+ Ions boosts UCNP Performance by amplifying the Absorption, the Yb3+ ions can also efficiently dissipate the energy stored in the material through energy Migration to the surface, thereby reducing the Overall energy Transfer Efficiency to the activator ions. The results provide yet another proof that UC Phosphor chemistry combined with materials Engineering through intentional core@shell structures may help to fine-tune the luminescence Features of UCNPs for their specific future applications in biosensing, bioimaging, photovoltaics, and Display technologies.