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Filtered Search Results
Thermo Scientific™ BetaBasic™ Phenyl Columns, 5μm Particle Size
BetaBasic columns are highly efficient and reproducible for small molecules, peptides and protein digests
| Pore Size | 150 Å |
|---|---|
| Particle Size | 5 μm |
| Carbon Load | 7% |
| Stationary Phase | Phenyl (Ph) |
| Phase | Reversed Phase |
| For Use With | LC/MS Separation |
| Endcapped | Yes |
| Packing Material | Silica |
| Column Type | Reversed Phase |
| Surface Area | 200 m²/g |
| Particle Shape | Spherical |
| Film Thickness | 5 μm |
| USP Type | L11 |
Thermo Scientific™ BetaBasic™ 8 Columns, 3μm Particle Size
Available in limited dimensions. Please contact Customer Service for more details.
| Pore Size | 150 Å |
|---|---|
| Particle Size | 3 μm |
| Carbon Load | 7% |
| Stationary Phase | C8 |
| Phase | Reversed Phase |
| For Use With | LC/MS, APCI |
| Endcapped | Yes |
| Packing Material | Silica |
| Column Type | Reversed Phase |
| pH | 2 to 9 |
| Surface Area | 200 m²/g |
| USP Type | L7 |
MilliporeSigma™ Supelco™ ChromegaChiral™ Chiral CCO F4 HPLC Column, 3 μm Particle Size
ChromegaChiral™ CCO F4 is a 4-Fluoro 3-methylphenyl cellulose phase which can be used in SFC or HPLC.
| Pore Size | 1000 Å |
|---|---|
| Particle Size | 3 μm |
| Stationary Phase | 2-fluoro 5-methylphenyl cellulose |
| Phase | Chiral |
| Matrix | 2-fluoro 5-methylphenyl cellulose Phase |
| Technique | Chiral HPLC |
| Product Line | ChromegaChiral |
MilliporeSigma™ Supelco™ CHIRALPAK™ HSA HPLC Column, 5 μm Particle Size
CHIRALPAK™ HSA, which uses human serum albumin as the chiral selector, is highly selective for acidic racemates, preferably weak and strong acids, zwitterionic and non-protolytic (neutral) compounds.
| Particle Size | 5 μm |
|---|---|
| Stationary Phase | Human Serum Albumin |
| Phase | Chiral |
| Matrix | Human Serum Albumin Phase |
| Technique | Chiral HPLC |
| Product Line | CHIRALPAK |
MilliporeSigma™ Supelco™ Ascentis™ Express F5 HPLC Column, 2.7 μm Particle Size
Ascentis™ Express F5 can be used for basic, acidic, or neutral compounds with alternate selectivity from C18.
MilliporeSigma™ Supelco™ Proteomix™ WCX-NP3 Weak Cation Exchange Column, 3 μm Particle Size, PEEK
Used for the analysis or small scale purification of positively charged biopolymers including glycoprotein isoforms and mAb variants.
| Pore Size | Nonporous |
|---|---|
| Particle Size | 3 μm |
| Stationary Phase | Weak Cation Exchange |
| Phase | Cation Exchange |
| Matrix | Spherical PS-DVB/Weak Cation Exchange Phase |
| Length (Metric) | 5 cm |
| pH | 2.0 to 12.0 |
| Material | PEEK |
| Technique | Cation Exchange |
| Product Line | Proteomix |
MilliporeSigma™ Supelco™ Unix™ SEC-200 UHPLC Column, 1.8 μm Particle Size
Provides high stability and negligible non-specific interactions.
| Pore Size | 200 Å |
|---|---|
| Particle Size | 1.8 μm |
| Stationary Phase | Neutral, Hydrophilic Film Bonded to Silica |
| Phase | Size Exclusion |
| Matrix | Neutral, Hydrophilic Film Bonded to Silica Phase/Spherical Silica |
| Diameter (Metric) | 4.6 mm |
| Technique | SEC UHPLC |
| Product Line | Unix |
MilliporeSigma™ Supelco™ Ascentis™ Express 160 Å Phenyl-Hexyl HPLC Column, 2.7 μm Particle Size
The endcapped, phenyl-hexyl bonded phase provides a stable, reversed phase packing with a pore structure and pore size that is optimized for reversed-phase HPLC separations of peptides and polypeptides, using typical acidic mobile phases favored for proteomic applications.
| Pore Size | 160 Å |
|---|---|
| Particle Size | 2.7 μm |
| Stationary Phase | Phenyl-Hexyl |
| Phase | Reversed Phase |
| Matrix | Phenyl-Hexyl Phase/Fused-Core Particle Platform |
| Endcapped | Yes |
| pH | 2 to 9 |
| Technique | Fused-Core HPLC |
| Surface Area | 90 m2/g |
| Product Line | Ascentis |
MilliporeSigma™ Supelco™ Ace Chromatography Column with Fritted Disc
No. 15 Ace-Thred at top and 2 mm bore, solid-PTFE stopcock-plug (tapered 1:5) at bottom. Supplied with nylon and FETFE™ O-ring for connecting 12.5 to 14 mm O.D. tube to column, and with tubing connector.
| Column Type | Chromatography |
|---|---|
| Material | Borosilicate Glass |
| Product Line | Ace |
MilliporeSigma™ Supelco™ SUPELCOSIL™ LC-18-DB HPLC Column, 5 μm Particle Size
SUPELCOSIL™ LC-DB phases are specially deactivated for basic compounds.
| Pore Size | 120 Å |
|---|---|
| Particle Size | 5 μm |
| Stationary Phase | C18 (Octadecyl) |
| Phase | Reversed Phase |
| Matrix | C18 (Octadecyl) Phase/Silica Gel, Spherical Particle Platform |
| Endcapped | Yes |
| Surface Area | 170 m2/g |
| Product Line | SUPELCOSIL |
MilliporeSigma™ Supelco™ Empty Tube for Thermal Desorption
Features an etched, unique number for sample identification
MilliporeSigma™ Supelco™ Ascentis™ Express Biphenyl Column, 2.7 μm Particle Size
The Ascentis™ Express biphenyl phase chemistry offers alternative selectivity for pharmaceutical analytes and drug metabolites that are not well retained or difficult to resolve on traditional alkyl (C18) and phenyl bonded phases.
| Pore Size | 90 Å |
|---|---|
| Particle Size | 2.7 μm |
| Stationary Phase | Biphenyl |
| Phase | Reversed Phase |
| Matrix | Biphenyl Phase/Particle Platform (Fused-Core) |
| Endcapped | Yes |
| Material | Stainless Steel Hardware |
| Technique | Fused-Core HPLC |
| Product Line | Ascentis |
MilliporeSigma™ Supelco™ Zenix™ SEC-300 Gel Filtration HPLC Column, 3 μm Particle Size, Stainless Steel
Like their 5 micron siblings, 3 micron Zenix™ SEC columns feature a hydrophilic surface layer to prevent the sample from interacting with the underlying silica.
| Pore Size | 300 Å |
|---|---|
| Particle Size | 3 μm |
| Stationary Phase | Hydrophilic Polymer |
| Phase | Size Exclusion |
| Matrix | Hydrophilic Polymer Phase/Spherical Silica |
| pH | 2.0 to 8.5 |
| Material | Stainless Steel |
| Technique | SEC HPLC |
| Product Line | Zenix |
MilliporeSigma™ Supelco™ Astec™ CYCLOBOND™ I 2000 RSP Chiral HPLC Column, 5 μm Particle Size
Astec™ CYCLOBOND™ I 2000 RSP chiral HPLC column is basically comprised of native and derivatized β and γ cyclodextrins. It has been used for numerous chiral separations via selectively trapping the organic molecules in the cyclodextrin cavity.