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Camphene: Ten Carbons, Sixteen Hydrogens

Still life with a Cibdol product introducing What Is Camphene
Cibdol · Camphene: Ten Carbons, Sixteen Hydrogens

Definition

Camphene is one of the terpenes found in cannabis, the aromatic fraction of the plant's essential oil that has been catalogued alongside cannabinoids for decades [1]. Its molecule contains two elements only, carbon and hydrogen: ten carbon atoms and sixteen hydrogen atoms, written C10H16. The published boiling point sits at roughly 159 °C.

The moment the lid comes off

A jar of dried hemp flower opens on a kitchen counter. The first thing that reaches you isn't a cannabinoid. It's the smell: sharp, resinous, a bit like the inside of a pine cupboard. That impression comes from the plant's essential oil, the aromatic fraction chemists file under the word terpenes, catalogued alongside cannabinoids for decades [1]. Camphene is one name on that list.

Ten carbons, sixteen hydrogens

Camphene is built from two elements. Carbon and hydrogen. Nothing else. Ten carbon atoms and sixteen hydrogen atoms, written as C10H16. Ten carbons is what places a molecule among the monoterpenes, which is a naming convention rather than a statement about what it does.

Where the smell actually lives

Press a fresh flower between your fingers and the sticky film left behind belongs to the same aromatic fraction that carries camphene [1]. On a lab report, that fraction sits in its own column, separate from the cannabinoid figures. Two measurements. Two different lines on paper.

Reading a molecule by its formula

C10H16 is exact about one thing: how many atoms, of which element. It counts. It says nothing about how those atoms are arranged in space, and arrangement is what separates one substance from another written the same way. A formula is a starting point, not a portrait.

What the formula pins down

Carbon and hydrogen only means no oxygen in the molecule, no nitrogen, no sulphur. A hydrocarbon. Molecules of that kind belong to the oily side of a mixture rather than the watery side, which is why work with plant aroma happens in oils and solvents.

What it leaves open

How much, for a start. A formula tells you nothing about the amount of camphene in a given plant, which cultivar carries more of it, or how this harvest compares with the last one. Those are measurements, and they move. Since 2014 our answer to that kind of question has stayed the same: read the analysis for the batch in front of you, not a general claim about the species.

159 °C on the data sheet

The published boiling point of camphene is around 159 °C. That is the temperature at which it moves from liquid to vapour, and it is one of the few figures about this molecule you can look up and quote flat.

How to read a boiling point

It marks a change of state, measured under standard pressure. It is not a line where a compound suddenly appears or vanishes. Aromatic molecules leave a liquid long before it boils, which is why an open bottle smells of something at room temperature.

Where the figure gets used

Anyone separating plant compounds with heat works with numbers like this one, because different molecules move into vapour at different temperatures. The figure also gives storage a rough sense of scale: a shelf in a cool cupboard sits well over a hundred degrees below that mark, and a car parked in the sun is warmer than the cupboard while still far from 159 °C. Heat and time are the two variables worth thinking about. Neither is dramatic. Both are worth noting.

Terpenes and cannabinoids in the same file

Camphene doesn't appear on its own. It shows up in the same catalogues that list cannabinoids, and it has done for decades [1]. Russo's 2011 review pulled that literature together and put a question on the table: whether the aromatic fraction of cannabis and the cannabinoids in the same plant interact in ways worth studying [1]. The paper frames that as a hypothesis to test, not a finding to repeat [1]. Which is roughly where the topic still sits. Terpene chemistry is well described. Individual terpenes measured in people, at the amounts actually present in a plant extract, are studied far less. We say that plainly, because a reader who wants certainty deserves to know where it runs out. What can be stated: camphene is a terpene, part of the essential oil fraction, ten carbons, sixteen hydrogens, boiling near 159 °C. Everything past that belongs to research still in progress. The useful part is that the gap is documented rather than hidden.

Smell is not evidence

A recognisable aroma tells you that something volatile is in the air. It does not tell you which molecule, or how much of it. The nose is a fair detector and a poor measuring instrument, which is one reason the aromatic fraction of hemp gets analysed in a laboratory rather than described from a distance [1]. Three things stay unmeasured by smell. Which terpene dominates a given batch. How many milligrams sit in a bottle. Whether the profile matches the one printed on the label. All three are answerable, just not by sniffing. That is the point of a batch analysis, and it is why we have published ours since 2014. There is also a claim we won't make: that a pleasant smell says anything about what a compound does in a body. Russo's 2011 review frames cannabis terpenes as a research subject with open questions, not as a settled account of outcomes [1]. Same standard, whichever compound is on the label.

From formula to batch report

What a certificate of analysis shows

A batch analysis is a document with named compounds and numbers next to them. Cannabinoids in one section. Where terpenes are measured, the aromatic compounds in another. Camphene, if it is reported, appears there as a name and a figure. What matters is less the single line than the habit behind it: a bottle with a report can be checked, and a bottle without one can only be believed.

Terms that sit next to this one

People who look up camphene usually arrive from somewhere nearby: terpenes in general, the essential oil of hemp, or full spectrum extracts, meaning extracts that keep the wider range of hemp compounds instead of isolating a single one. Those pages answer different questions and are worth reading side by side, because the chemistry only makes sense together. Our own line stays where it started in 2014. Swiss formulation, independent analysis per batch, non-intoxicating products within legal THC limits, and a plain sentence whenever the research goes no further than chemistry.

Frequently Asked Questions

Is camphene a cannabinoid?
No. Camphene belongs to the terpenes, the aromatic fraction of the plant's essential oil, which has been catalogued alongside cannabinoids for decades [1]. On a lab report the two groups appear in separate sections, measured separately.
How many atoms are there in one camphene molecule?
Twenty-six in total: ten carbon atoms and sixteen hydrogen atoms, written as C10H16. Only those two elements are present, with no oxygen, nitrogen or sulphur in the molecule.
Does heat matter when handling camphene?
The published boiling point is about 159 °C under standard pressure, so a cool cupboard sits far below it. Aromatic molecules still leave a liquid well before boiling, which is why heat and storage time are both worth noting.
Is camphene intoxicating?
Camphene is a terpene from the aromatic fraction of the plant, not THC, and Russo's 2011 review discusses cannabis terpenes as an open research question rather than a settled account of outcomes [1]. Cibdol products are non-intoxicating and stay within legal THC limits.

About this article

Luke Sholl has been writing about cannabinoids, CBD, and the broader benefits of nature since 2011. His background includes first-hand cannabis cultivation experience spanning the full seed-to-harvest lifecycle across so

This wiki article was drafted with AI assistance and reviewed by Luke Sholl, CBD & wellness writer. Editorial oversight by Joshua Askew.

Editorial standardsAI use policy

Medical disclaimer. This content is for informational purposes only and does not constitute medical advice. Consult a qualified healthcare provider before use of any substance.

Last reviewed 29 серпня 2026 р.

References (1)

  1. [1]Russo, E.B. (2011). Taming THC: potential cannabis synergy and phytocannabinoid-terpenoid entourage effects. DOI: https://doi.org/10.1111/j.1476-5381.2011.01238.x

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