Some things do not like water. 


Some things do not like water. 


Some things do not like water. We call these things hydrophobes. The word comes from Greek. It means "having a fear of water." 
Hydrophobic things do not mix well with water. Oils and fats are good examples. They prefer to stay away from water. Instead, they often clump together in groups. 
When water sits on a hydrophobic surface, it forms a shape. We measure this shape with a contact angle. This is the angle where the water, air, and surface meet.
Some surfaces are superhydrophobic. This means they are extremely hard to wet. The lotus plant has these leaves. 
Even soil can become hydrophobic. This can happen after a wildfire. When soil is hydrophobic, water runs over the top. It does not soak into the ground. 
Have you ever noticed how water beads up on a greasy pan? 

To understand how this works, we look at how water molecules behave. Water molecules like to bond with each other using hydrogen bonds. When a nonpolar substance enters the water, it disrupts these bonds.
Scientists have studied these shapes for a long time. In 1805, Thomas Young defined the contact angle. This is the angle formed where the liquid, gas, and solid all meet. 
There are many important facts about these surfaces. A surface is often called hydrophobic if the contact angle is greater than 90 degrees. 
We see hydrophobicity in many parts of our world. It is used to help remove oil from water during oil spills. It also helps in chemical separation processes. Even nature shows this in unexpected ways. For example, soil can become hydrophobic after a wildfire. 
Hydrophobicity is a fundamental chemical property of certain molecules. These molecules, known as hydrophobes, appear to be repelled by water. This is the opposite of hydrophilic substances, which are attracted to water. Most hydrophobic molecules are nonpolar. Because water molecules are polar, they do not mix well with these neutral substances. Instead of dissolving, hydrophobic molecules often cluster together. This clustering forms structures called micelles. 
To understand the mechanism, we must look at molecular interactions. Water molecules are held together by dynamic hydrogen bonds. When a nonpolar solute enters the water, it disrupts these bonds. The water molecules compensate by forming a highly ordered, cage-like structure around the solute. This structure is called a clathrate. This arrangement is more orderly than free water, which results in a lower entropic state at the interface. To increase entropy, the nonpolar molecules clump together. This minimizes the surface area exposed to the water. This process is known as phase separation. 
At the molecular level, the size of the solute changes how this works. For small solutes, the process is mostly driven by entropy. However, for larger nonpolar solutes, the disruption of hydrogen bonds becomes inevitable. This creates a high enthalpic cost. Scientists have observed that this transition happens at around 1 nanometer in size. A quantitative definition of hydrophobicity is based on the Defect Interaction Threshold, or DIT. A system is considered hydrophobic if it cannot compensate for missing hydrogen bonds with an energy of at least -6 kJ/mol. This value is about 30% of the typical energy of a single hydrogen bond.
We can also categorize surfaces by how they interact with water droplets. A common way to measure this is through the contact angle. This is the angle formed at the three-phase boundary where liquid, gas, and solid meet. 
There are two primary models for how water sits on rough surfaces. In the Wenzel state, the liquid is in intimate contact with the microstructured surface. This state can amplify the surface's natural tendency. A hydrophobic surface becomes even more hydrophobic in the Wenzel state. In contrast, the Cassie–Baxter state occurs when the liquid is suspended on the tops of microstructures. In this state, the water is more mobile. This is why water droplets roll easily off a lotus leaf. 
Researchers have studied these phenomena for many years. In 1805, Thomas Young defined the contact angle. In 1964, Dettre and Johnson developed a model for the lotus effect using glass beads. Between 1986 and 1995, scientists developed superhydrophobic materials for biomedical applications. In 2002, a durable hierarchical composition was disclosed. This used nano-sized particles to protect larger micrometer-sized features from abrasion. Today, many methods exist to create these surfaces, including plasma treatments and vapor deposition.
Hydrophobicity has many important real-world applications and consequences. It is used in managing oil spills and removing oil from water. It is also used in chemical separation processes to remove non-polar substances. In nature, hydrophobicity can appear in soil after a wildfire. This can cause precipitation to become surface runoff instead of soaking into the ground. 
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