Spectral Manipulation

Spectral manipulation is the deliberate control of how energy is distributed across wavelengths or frequencies, enabling engineers to tailor light, electromagnetic radiation, or other signals for specific functions. It works by selectively transmitting, reflecting, absorbing, shifting, or combining spectral components through materials and devices such as filters, coatings, gratings, resonators, and modulators. In engineering, these methods support optical communication, imaging, spectroscopy, environmental sensing, and photovoltaic energy conversion by improving signal selectivity, resolution, efficiency, or bandwidth. Continued advances in nanomaterials and integrated photonics are expanding spectral control into compact sensors, adaptive optical systems, and next-generation communication technologies.

Spectral Manipulation - Related Videos

Research

JoVE Journal - Medicine
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Osteopathic Manipulative Treatment as a Useful Adjunctive Tool for Pneumonia

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Cited by 50 •

2014

Pneumonia is one of the top ten leading causes of death in the U.S. Osteopathic manipulative techniques (OMT) may be utilized as an adjunctive therapy in the treatment of pneumonia to enhance biomechanical and immune function; and ultimately, to reduce hospital stay, duration of antibiotics, incidence of respiratory failure, and mortality. In this video-article, we will review randomized controlled studies on the use of OMT in pneumonia patients, as well as demonstrate specific hands-on...

Research

JoVE Journal - Bioengineering

Integrated Photoacoustic Ophthalmoscopy and Spectral-domain Optical Coherence Tomography

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Cited by 24 •

2013

Photoacoustic ophthalmology (PAOM), an optical-absorption-based imaging modality, provides the complementary evaluation of the retina to the currently available ophthalmic imaging technologies. We report the using of PAOM integrated with spectral-domain optical coherence tomography (SD-OCT) for simultaneous multimodal retinal imaging in rats.

High-plex Imaging using Spectral Confocal Microscopy to Minimize Non-specific Tissue Fluorescence

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2025

Spectral Iterative Bleaching Extends Multiplexity (IBEX) builds upon the base IBEX technique by adding heparin blocking to minimize nonspecific binding and leveraging spectral detection with computational unmixing to suppress autofluorescence. This approach accelerates image acquisition while reducing sources of background, enabling robust multi-round, high-parameter spatial proteomic analyses.

In vivo Quantification of G Protein Coupled Receptor Interactions using Spectrally Resolved Two-photon Microscopy

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Cited by 6 •

2011

By employing a spectrally resolved two-photon microscopy imaging system, pixel-level maps of Förster Resonance Energy Transfer (FRET) efficiencies are obtained for cells expressing membrane receptors hypothesized to form homo-oligomeric complexes. From the FRET efficiency maps, we are able to estimate stoichiometric information about the oligomer complex under study.

Determination of Photoreceptor Cell Spectral Sensitivity in an Insect Model from In Vivo Intracellular Recordings

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Cited by 14 •

2016

The electrophysiological technique of intracellular recording is demonstrated and used to determine spectral sensitivities of single photoreceptor cells in the compound eye of a butterfly.

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