For full functionality of this site it is necessary to enable JavaScript.
EMINKH.COM
0

Why are the boiling points of organic substances, fats, and inorganic substances different?

03/17/2026 13:50:50

The boiling point of each substance is different, depending on its structure and the bonds within its molecule. Understanding this index will help you easily visualize the properties of each group of substances and be more proactive when comparing or using them in practice.

With different material samples, temperature can be monitored using a contact thermometer or an infrared thermometer when a quick surface check is needed.

Boiling point of organic substances

Organic substances are usually of natural or synthetic origin, containing carbon-hydrogen bonds in their composition. This group is very common in everyday life, such as alcohols, sugars, and biological compounds.

In terms of boiling point, most organic substances do not have very high boiling points. However, each type still has its own threshold, depending on its molecular structure.

If we compare them by functional group, we can see the following trend:

COOH (acid) > OH (alcohol, phenol) > COO (ester) > CHO (aldehyde) > O (ether)

This difference stems from the ability to form hydrogen bonds and the polarity of each group.

In addition, the boiling point of organic compounds is also affected by several factors:

- The stronger the hydrogen bonds in a compound, the higher its boiling point.

- Intermolecular hydrogen bonds generally result in higher boiling points than intramolecular bonds.

- The larger the molecular mass, the higher the boiling point.

- More branched chains will have lower boiling points than straight chains.

For example, CH3COOH has a higher boiling point than HCOOH due to its larger molecular weight.

Boiling point of fats

Fats are also a type of organic compound, but they have a longer and more complex molecular structure, so their boiling points are usually higher.

The boiling point varies depending on the type of fat:

- Monounsaturated fats like olive oil and peanut oil usually boil above 100°C, and can reach around 240°C.

- Polyunsaturated fats like omega-3 and omega-6 usually boil above 120°C.

- Saturated fats, such as animal fat, typically boil above 130°C.

- Trans fats, such as margarine, can boil at around 150°C.

In general, fats have higher boiling points than water and much higher than many simple organic compounds. This is directly related to molecular size and the ability of molecules to bond together.

Boiling point of inorganic substances

Inorganic substances are compounds that do not contain carbon in their structure, except for some special cases such as CO, CO₂, or carbonate salts.

Compared to organic substances, inorganic substances generally have much higher boiling points. This is due to the strong ionic or covalent bonds, which require a large amount of energy to break.

The difference is clearly illustrated by a familiar example. Ethanol (C₂H₅OH) only boils at around 78.3°C, while an inorganic compound like CaCl₂ can reach thousands of degrees Celsius before turning into vapor.

The boiling points of organic substances, fats, and inorganic substances differ significantly, mainly due to their molecular structure and type of bonding. Organic substances generally have lower boiling points, fats have higher boiling points due to their larger molecules, while inorganic substances usually have very high boiling points.

Related News

Does thermal shock cause damage to electronic components?
07/22/2026 10:40:49

An electronic component may operate stably under constant temperature conditions yet fail after repeated rapid transitions between hot and cold. The issue typically stems not from a specific temperature level, but rather from the rate of temperature change and the number of hot-cold cycles

The rigorous standards behind a multi-million-dollar MRI suite
07/21/2026 14:54:01

An MRI system may be correctly installed and fully connected to the power supply, yet still encounter issues if the surrounding environment fails to meet technical specifications. Electromagnetic interference, RF shielding, power quality, grounding, temperature, humidity, and particulate levels are all factors that may require assessment, depending on the facility's design and the manufacturer's requirements.

Sinusoidal and Random Vibration: A Test Setup Guide for Industrial Engineers
07/21/2026 10:30:38

During the operation of industrial machinery or the transportation of goods, persistent mechanical vibrations inevitably occur; these are a primary cause of material fatigue, loosened connections, and cracking in printed circuit boards (PCBs). To ensure product integrity before delivery to customers, R&D and QA/QC engineers must simulate these dynamic forces using vibration test systems.

Capacities of laboratory centrifuge tubes
07/20/2026 13:55:40

Tubes with capacities of 0.2 ml, 1.5 ml, 15 ml, or 50 ml are commonly found in laboratories, yet each type is associated with specific sample categories and equipment configurations. DNA and RNA samples typically require small-volume microtubes; blood and cell samples often utilize 5 ml or 15 ml tubes; while large-volume processing workflows may require tubes of 50 ml, 100 ml, or greater capacity

How Much Does Atmospheric Pressure Need to Drop Before It Rains ?
07/20/2026 10:11:04

A barometric pressure meter (barometer) often detects changes in weather conditions before rainfall begins. As atmospheric pressure falls, the structure of the surrounding air mass is also changing. However, there is no fixed pressure threshold that guarantees rain will occur.

Stay Updated with Offers

Get exclusive volume discounts, bulk pricing updates, and new product alerts delivered directly to your inbox.

By subscribing, you agree to our Terms of Service and Privacy Policy.

Quick Support

Direct access to our certified experts