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Tablet mechanics depend on nano and micro scale adhesion, lubrication and structure

Badal Tejedor, Maria (författare)
RISE,KTH,Yt- och korrosionsvetenskap,SP, Technical Research Institute of Sweden, Box 5607, SE-114 86 Stockholm, Swede,SP Kemi Material och Ytor,KTH Royal Institute of Technology, Sweden
Niklas, Nordgren (författare)
RISE,SP Kemi Material och Ytor
Schuleit, M. (författare)
Novartis Pharma AG, Switzerland
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Rutland, Mark W. (författare)
RISE,KTH,Yt- och korrosionsvetenskap,SP, Technical Research Institute of Sweden, Box 5607, SE-114 86 Stockholm, Swede,SP Kemi Material och Ytor,KTH Royal Institute of Technology, Sweden
Millqvist-Fureby, Anna (författare)
RISE,SP Kemi Material och Ytor
visa färre...
 (creator_code:org_t)
Elsevier, 2015
2015
Engelska.
Ingår i: International Journal of Pharmaceutics. - : Elsevier. - 0378-5173 .- 1873-3476. ; 486:1-2, s. 315-323
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
Stäng  
  • Tablets are the most convenient form for drug administration. However, despite the ease of manufacturing problems such as powder adhesion occur during the production process. This study presents surface and structural characterization of tablets formulated with commonly used excipients (microcrystalline cellulose (MCC), lactose, mannitol, magnesium (Mg) stearate) pressed under different compaction conditions. Tablet surface analyses were performed with scanning electron microscopy (SEM), profilometry and atomic force microscopy (AFM). The mechanical properties of the tablets were evaluated with a tablet hardness test. Local adhesion detected by AFM decreased when Mg stearate was present in the formulation. Moreover, the tablet strength of plastically deformable excipients such as MCC was significantly decreased after addition of Mg stearate. Combined these facts indicate that Mg stearate affects the particle-particle bonding and thus elastic recovery. The MCC excipient also displayed the highest hardness which is characteristic for a highly cohesive material. This is discussed in the view of the relatively high adhesion found between MCC and a hydrophilic probe at the nanoscale using AFM. In contrast, the tablet strength of brittle materials like lactose and mannitol is unaffected by Mg stearate. Thus fracture occurs within the excipient particles and not at particle boundaries, creating new surfaces not previously exposed to Mg stearate. Such uncoated surfaces may well promote adhesive interactions with tools during manufacture.

Ämnesord

MEDICIN OCH HÄLSOVETENSKAP  -- Medicinska och farmaceutiska grundvetenskaper -- Farmaceutiska vetenskaper (hsv//swe)
MEDICAL AND HEALTH SCIENCES  -- Basic Medicine -- Pharmaceutical Sciences (hsv//eng)

Nyckelord

Adhesion
Atomic force microscopy
Excipients
Profilometry
Surface roughness
Tableting
lactose
magnesium stearate
mannitol
microcrystalline cellulose
Article
chemical binding
chemical structure
controlled study
drug formulation
elasticity
hydrophilicity
lubrication
mechanics
priority journal
scanning electron microscopy
strength
tablet
tablet hardness
tablet property
tablet surface

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