α-Terpineol

Identity

Property Value
Preferred name α-Terpineol
IUPAC name 2-(4-methylcyclohex-3-en-1-yl)propan-2-ol
CAS number 98-55-5
PubChem CID 17100 [^4]
Chemical family Monocyclic Monoterpene Alcohol
Molecular formula C10H18O
Molecular mass 154.25 g/mol
Stereochemistry One chiral center; the natural (−)-enantiomer is (S)-α-terpineol. Commercial material is usually the racemic (±) form [^1]

Aroma and sensory character

Lilac, floral, pine-like, and slightly citrus character; one of the principal aroma constituents of pine smoke.

Occurrence outside cannabis

  • Pine (Pinus species) and pine-needle oils
  • Lilac (Syringa species)
  • Tea (Camellia sinensis)
  • Cardamom (Elettaria cardamomum)

Physical properties

Property Value
Standard boiling point ≈218 °C (NIST: 490.7 K, 491.15 K, 491.0 K across three determinations) [^1]
Reference pressure 101.325 kPa
Data source NIST Chemistry WebBook (SRD 69), CAS 98-55-5, phase change data [^1]

Thermal-extraction context

α-Terpineol is a relatively low-volatility monoterpene alcohol; its vapor-pressure-driven evaporation from botanical matrix begins well below the reported atmospheric boiling point.

Reported biological activity

Human evidence

No verified controlled human study of inhaled isolated α-terpineol was identified for this archive; claims of calming or sedative effects upon inhalation remain unresolved [^2].

Animal or laboratory evidence

In vitro screens report modulation of CB1/CB2 signaling at micromolar concentrations (using a terpineol isomer mixture), inhibition of NF-κB signaling in tumor cell lines, and antimicrobial activity. These concentrations are far above plausible cannabis-inhalation exposure 1.

Traditional or anecdotal claims

Historically used in aromatherapy and traditional herbal steam preparations.

Cannabis laboratory results

Measured at 0.034–0.08 mg/g dry weight across three University of Mississippi chemovars (GC-FID) and at 0.1–0.9 mg/g across California dispensary cultivars (GC-FID) — a minor constituent 2. α-Terpineol can also form from oxidation of other monoterpenes during storage and processing. Consult Lab Results for batch-level measurements.

Sources

  1. No publicly reachable primary source is currently cited for the remaining details in this footnote. The details remain approximate or unverified and are not treated as verified archive facts. ↩

  2. Ibrahim EA, et al. Quantitative Determination of Cannabis Terpenes Using Gas Chromatography-Flame Ionization Detector. Cannabis Cannabinoid Res. 2023;8(5):899–910. doi:10.1089/can.2022.0188. PMID 36322895; Fischedick JT. Identification of Terpenoid Chemotypes Among High (−)-trans-Δ9-Tetrahydrocannabinol-Producing Cannabis sativa L. Cultivars. Cannabis Cannabinoid Res. 2017;2(1):34–47. PMID 28861503. ↩