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Key Documents

Safety Information

61909

Sigma-Aldrich

Atto Rho14 NHS ester

BioReagent, suitable for fluorescence

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250 MG
¥613.19

¥613.19


Estimated to ship on2025年7月09日Details


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250 MG
¥613.19

About This Item

UNSPSC Code:
12352108
NACRES:
NA.32

¥613.19


Estimated to ship on2025年7月09日Details


Request a Bulk Order

product line

BioReagent

Assay

≥90.0% (HPLC)

form

solid

manufacturer/tradename

ATTO-TEC GmbH

extent of labeling

≥90.0%

λ

in ethanol (with 0.1% trifluoroacetic acid)

UV absorption

λ: 624.0-630.0 nm Amax

suitability

suitable for fluorescence

storage temp.

−20°C

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This Item
D8375D6134M9376
biological source

synthetic (organic)

biological source

synthetic

biological source

synthetic (organic)

biological source

synthetic (organic)

assay

≥98% (GC)

assay

≥98% (GC)

assay

≥99% (GC)

assay

≥99% (GC)

Quality Level

200

Quality Level

200

Quality Level

200

Quality Level

200

solubility

H2O: 1 M at 20 °C, clear, colorless

solubility

H2O: 0.250 g/5mL

solubility

H2O: soluble 330 mg/mL, clear, colorless

solubility

water: 50 mg/mL, clear, colorless

form

powder

form

crystalline

form

crystalline

form

powder

Application

Atto Rho14 NHS ester is a new rhodamine featuring a functionality for coupling to bio-molecules such as DNA, RNA or proteins. The label shows strong absorption and extraordinarily high fluorescence quantum yield. ATTO Rho14 is the brightest label available in this wavelength range. The dye exhibits an exceptionally high photostability. In common with most ATTO-labels, absorption and fluorescence are pH-independent in the range of pH 2 to 11, used in typical applications. The dye is moderately hydrophilic. After coupling to a substrate ATTO Rho14 carries a net electrical charge of +1.

Legal Information

This product is for Research use only. In case of intended commercialization, please contact the IP-holder (ATTO-TEC GmbH, Germany) for licensing.

Storage Class Code

11 - Combustible Solids

Flash Point(F)

Not applicable

Flash Point(C)

Not applicable

Regulatory Information

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Chao Ma et al.
Analytica chimica acta, 734, 69-78 (2012-06-19)
This article describes the design and preparation of a novel fluorescence resonance energy transfer (FRET)-based ratiometric sensor with the polymer nanoparticle as scaffold for detecting Hg(2+) in aqueous media. In this study, a fluorescent dye fluorescein isothiocyanate (FITC, served as
Yuan-Qiang Sun et al.
Angewandte Chemie (International ed. in English), 51(31), 7634-7636 (2012-06-08)
Probes to dye for: Rhodamine-inspired Si-pyronine, Si-rhodamine, Te-rhodamine, and Changsha NIR dyes have been developed recently. These dyes show fluorescence in the far-red to near-infrared region, while retaining the advantages of the original rhodamines, such as high fluorescence quantum yield
Raphael Alford et al.
Molecular imaging, 8(6), 341-354 (2009-12-17)
Fluorophores are potentially useful for in vivo cancer diagnosis. Using relatively inexpensive and portable equipment, optical imaging with fluorophores permits real-time detection of cancer. However, fluorophores can be toxic and must be investigated before they can be administered safely to
Jan Klohs et al.
Basic research in cardiology, 103(2), 144-151 (2008-03-08)
Light in the near-infrared (NIR) region between 700-900 nm can penetrate deep into living tissue, thereby offering a unique opportunity to use near-infrared fluorescence (NIRF) imaging techniques to detect and visualize fluorescent probes in-vivo. In the past few years, many
Jianghong Rao et al.
Current opinion in biotechnology, 18(1), 17-25 (2007-01-20)
In vivo fluorescence imaging uses a sensitive camera to detect fluorescence emission from fluorophores in whole-body living small animals. To overcome the photon attenuation in living tissue, fluorophores with long emission at the near-infrared (NIR) region are generally preferred, including

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