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bardac 2250  (Lonza)


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    Lonza bardac 2250
    Bardac 2250, supplied by Lonza, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/multi-purpose+code+fluka/bardac++2250/us12122979-397-198-200
    Average 90 stars, based on 1 article reviews
    bardac 2250 - by Bioz Stars, 2026-09
    90/100 stars

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    Article Title: Compositions and methods for long lasting disinfection
    Article Snippet: Some non-limiting examples of dialkyldimethyl ammonium salts include didecyldimethyl ammonium halides, commercially available as Bardac® 22 from Lonza Inc.; didecyl dimethyl ammonium chloride commercially available as Bardac® 2250 from Lonza Inc.; dioctyl dimethyl ammonium chloride, commercially available as Bardac® LF and Bardac® LF-80 from Lonza Inc.; and octyl decyl dimethyl ammonium chloride sold as a mixture with didecyl and dioctyl dimethyl ammonium chlorides, commercially available as Bardac® 2050 and 2080 from Lonza Inc. Heteroaromatic ammonium salts contain one R group that is a long-chain alkyl group, and the remaining R groups are provided by some aromatic system.

    Article Title: Cleaning article with preferential rheological solid composition
    Article Snippet: Materials List (1) Water: Millipore, Burlington, MA (18 m-ohm resistance) (2) Sodium caprate (sodium decanoate, NaC10): TCI Chemicals, Cat #D0024 (3) Sodium laurate (sodium dodecanoate, NaC12): TCI Chemicals, Cat #D0024 (4) Sodium myristate (sodium tetradecanoate, NaC14): TCI Chemicals, Cat. #M0483 (5) Sodium palmitate (sodium hexadecanoate, NaC16): TCI Chemicals, Cat. #P0007 (6) Sodium stearate (sodium octadecanoate, NaC18): TCI Chemicals, Cat. #S0081 (7) Sodium oleate (sodium trans-9-octadecanoate, NaC18:1): TCI Chemicals, Cat #O0057 (8) Pentadecylic acid (pentadecanoic acid, HC15): TCI Chemicals, Cat #P0035 (9) Margaric acid (heptadecanoic acid, HC17): TCI Chemicals, Cat #H0019 (10) Nonadecylic acid (nonadecanoic acid, HC19): TCI Chemicals, Cat #N0283 (11) C1270 K ID: P&G Chemicals, Cincinnati, OH) prod. code 10275803 (12) C1618 K ID: P&G Chemicals, Cincinnati, OH) prod. code 10275805 (13) C1218 K ID: P&G Chemicals, Cincinnati, OH) prod. code 10275798 (14) C1214 K ID: P&G Chemicals, Cincinnati, OH) prod. code 10275796 (15) NaOH: 0.10 M, Fluka Chemical, Cat #319481-500ML (16) Sodium chloride (NaCl): VWR, Cat #BDH9286-500G (17) Lauric acid (HL): TCI Chemicals, Cat #L0011 (18) NaOH: 1.0 N, Honeywell/Fluka, Cat #35256-1L (19) Mirapol HSC-300 (Solvay, Princeton NJ) (20) Amine Oxide (Procter & Gamble Company, Cincinnati, OH, Cat #AO-1214-Lp) (21) Uniquat 2250 (Lonza, Morristown, NJ) (22) Bardac 2250 (Lonza, Morristown, NJ) (23) Dowanol PNB-TR (Sigma Aldrich, St. Louis, MO, Cat #484415) (24) Propylene Glycol Phenyl Ether (Sigma Aldrich, St. Louis, MO, Cat #484423) (25) DiPnB (Sigma Aldrich, St. Louis, MO, Cat #388130) (26) DC1410 (The Dow Chemical Company, Midland, MI, Cat #Xiameter AFE-1410) (27) Kathon (Supreme Resources, Inc., Suwanee, GA) (28) Perfume (FIF Sunkissed NS-2, Procter & Gamble Company, Cincinnati, OH) (29) Tween 20 (Croda, Edison, NJ) (30) Styleze C-10 (Ashland Chemical Company, Columbus, OH) (31) PEG 8000 (Fisher Scientific, Fair Lawn, NJ) (32) NatPure Cellgum Plus (South Plainfield, NJ) (33) Crystallizing Fluid (Swiffer WetJet Multi-Purpose Floor Cleaner Solution with Febreze, Lavender Vanilla and Comfort Scent)

    Article Title: Avobenzone fusing agents for three-dimensional printing
    Article Snippet: Example antimicrobial agents can include the NUOSEPT® (Ashland Inc., USA), VANCIDE® (R.T. Vanderbilt Co., USA), ACTICIDE® B20 and ACTICIDE® M20 (Thor Chemicals, U.K.), PROXEL® GXL (Arch Chemicals, Inc., USA), BARDAC® 2250, 2280, BARQUAT® 50-65E, and CARBOQUAT® 250-T, (Lonza Ltd. Corp., Switzerland), KORDEKO MLX (The Dow Chemical Co., USA), and a combination thereof.

    Article Title: Three-dimensional printing
    Article Snippet: Example antimicrobial agents can include the NUOSEPT® (Ashland Inc. (USA)), VANCIDE® (R.T. Vanderbilt Co. (USA)), ACTICIDE® B20 and ACTICIDE® M20 (Thor Chemicals (U.K.)), PROXEL® GXL (Arch Chemicals, Inc. (USA)), BARDAC® 2250, 2280, BARQUAT® 50-65B, and CARBOQUAT® 250-T, (Lonza Ltd. Corp. (Switzerland)), KORDEK® MLX (The Dow Chemical Co. (USA)), and combinations thereof.

    Article Title: Green body including a metal nanoparticle binder
    Article Snippet: Examples of suitable biocides include an aqueous solution of 1,2-benzisothiazolin-3-one (e.g., PROXEL® GXL from Arch Chemicals, Inc.), quaternary ammonium compounds (e.g., BARDAC® 2250 and 2280, BARQUAT® 50-65B, and CARBOQUAT® 250-T, all from Lonza Ltd. Corp.), and an aqueous solution of methylisothiazolone (e.g., KORDEK® MLX from The Dow Chemical Co.).

    Article Title: Interaction between antimicrobial quaternary compounds and anionic surfactants
    Article Snippet: Some non-limiting examples of dialkyldimethyl ammonium salts include didecyldimethyl ammonium halides, commercially available as Bardac 22 from Lonza Inc.; didecyl dimethyl ammonium chloride commercially available as Bardac 2250 from Lonza Inc.; dioctyl dimethyl ammonium chloride, commercially available as Bardac LF and Bardac LF-80 from Lonza Inc.); and octyl decyl dimethyl ammonium chloride sold as a mixture with didecyl and dioctyl dimethyl ammonium chlorides, commercially available as Bardac2050 and 2080 from Lonza Inc. Heteroaromatic ammonium salts contain one R group that is a long-chain alkyl group, and the remaining R groups are provided by some aromatic system.

    Article Title: Three-dimensional printing
    Article Snippet: Examples of suitable biocides include an aqueous solution of 1,2-benzisothiazolin-3-one (e.g., PROXEL® GXL from Arch Chemicals, Inc.), quaternary ammonium compounds (e.g., BARDAC® 2250 and 2280, BARQUAT® 50-65B, and CARBOQUAT® 250-T, all from Lonza Ltd. Corp.), and an aqueous solution of methylisothiazolone (e.g., KORDEK® MLX from The Dow Chemical Company).

    Article Title: Multi-fluid kits for three-dimensional printing
    Article Snippet: Example antimicrobial agents can include the NUOSEPT® (Ashland Inc. (USA)), VANCIDE® (R.T. Vanderbilt Co. (USA)), ACTICIDE® B20 and ACTICIDE® M20 (Thor Chemicals (U.K.)), PROXEL® GXL (Arch Chemicals, Inc. (USA)), BARDAC® 2250, 2280, BARQUAT® 50-65B, and CARBOQUAT® 250-T, (Lonza Ltd. Corp. (Switzerland)), KORDEK® MLX (The Dow Chemical Company (USA)), and combinations thereof.



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    a Monte Carlo mass model of the experimental setup to perform Compton edge probing with an inorganic gamma-ray scintillation spectrometer under laboratory conditions. The spectrometer consists of four individual 10.2 cm × 10.2 cm × 40.6 cm prismatic NaI(Tl) scintillation crystals with the associated photomultiplier tubes (PMT), the electronic components, e.g. the multi-channel analyzers (MCA), embedded in a thermal-insulating and vibration-damping polyethylene (PE) foam protected by a rugged aluminum detector box. We inserted radiation sources consisting of a radionuclide carrying ion exchange sphere (diameter 1 mm) embedded in a 25 mm × 3 mm solid plastic disc into a custom low absorption source holder made out of a polylactide polymer (PLA) and placed this holder on a tripod in a fixed distance of 1 m to the detector front on the central detector x -axis. The mass model figures were created using the graphical interface FLAIR . For better visibility and interpretability, we applied false colors. b Overview of the Bayesian inference framework highlighting the gamma-ray spectrometry based Compton edge probing measurements, the Monte Carlo simulations using the multi-purpose code FLUKA combined with the machine learning trained polynomial chaos expansion (PCE) emulator models supported by principal component analysis (PCA) as well as the Bayesian inference by Markov Chain Monte Carlo (MCMC) itself using UQLab . c Radiation transport mechanisms inside the inorganic scintillation crystal, which is surrounded by a thin reflector layer and a rugged aluminum crystal casing. d Schematic representation of an inorganic scintillation crystal lattice including the activator atoms and point defects. e Mechanistic depictions of the various scintillation and quenching pathways for electron-hole pairs (e − /h) as well as excitons within the inorganic scintillation crystal lattice. Adapted from ref. .

    Journal: Nature Communications

    Article Title: Emulator-based Bayesian inference on non-proportional scintillation models by compton-edge probing

    doi: 10.1038/s41467-023-42574-y

    Figure Lengend Snippet: a Monte Carlo mass model of the experimental setup to perform Compton edge probing with an inorganic gamma-ray scintillation spectrometer under laboratory conditions. The spectrometer consists of four individual 10.2 cm × 10.2 cm × 40.6 cm prismatic NaI(Tl) scintillation crystals with the associated photomultiplier tubes (PMT), the electronic components, e.g. the multi-channel analyzers (MCA), embedded in a thermal-insulating and vibration-damping polyethylene (PE) foam protected by a rugged aluminum detector box. We inserted radiation sources consisting of a radionuclide carrying ion exchange sphere (diameter 1 mm) embedded in a 25 mm × 3 mm solid plastic disc into a custom low absorption source holder made out of a polylactide polymer (PLA) and placed this holder on a tripod in a fixed distance of 1 m to the detector front on the central detector x -axis. The mass model figures were created using the graphical interface FLAIR . For better visibility and interpretability, we applied false colors. b Overview of the Bayesian inference framework highlighting the gamma-ray spectrometry based Compton edge probing measurements, the Monte Carlo simulations using the multi-purpose code FLUKA combined with the machine learning trained polynomial chaos expansion (PCE) emulator models supported by principal component analysis (PCA) as well as the Bayesian inference by Markov Chain Monte Carlo (MCMC) itself using UQLab . c Radiation transport mechanisms inside the inorganic scintillation crystal, which is surrounded by a thin reflector layer and a rugged aluminum crystal casing. d Schematic representation of an inorganic scintillation crystal lattice including the activator atoms and point defects. e Mechanistic depictions of the various scintillation and quenching pathways for electron-hole pairs (e − /h) as well as excitons within the inorganic scintillation crystal lattice. Adapted from ref. .

    Article Snippet: For better visibility and interpretability, we applied false colors. b Overview of the Bayesian inference framework highlighting the gamma-ray spectrometry based Compton edge probing measurements, the Monte Carlo simulations using the multi-purpose code FLUKA combined with the machine learning trained polynomial chaos expansion (PCE) emulator models supported by principal component analysis (PCA) as well as the Bayesian inference by Markov Chain Monte Carlo (MCMC) itself using UQLab . c Radiation transport mechanisms inside the inorganic scintillation crystal, which is surrounded by a thin reflector layer and a rugged aluminum crystal casing. d Schematic representation of an inorganic scintillation crystal lattice including the activator atoms and point defects. e Mechanistic depictions of the various scintillation and quenching pathways for electron-hole pairs (e − /h) as well as excitons within the inorganic scintillation crystal lattice.

    Techniques: Polymer