Lotus Leaf Self-Cleaning Surfaces: Superhydrophobicity — Sto-Lotusan, Schoeller
Biological model: Sacred lotus (Nelumbo nucifera)
Company: Sto-Lotusan, Schoeller
The lotus leaf is covered in microscopic waxy bumps that make water form perfect spheres and roll off instantly, carrying dirt with them. This "lotus effect" has been commercialised in self-cleaning building materials, textiles, medical devices, and solar panels worldwide.
The challenge
Building and surface maintenance requires chemical cleaning, water consumption, and ongoing labor costs
Nature's strategy
Lotus plant leaf (Nelumbo nucifera) self-cleaning mechanism
What was emulated
Microscopic bumpy texture combined with hydrophobic waxy coating
The innovation
Lotus-inspired superhydrophobic coatings enabling water and dirt to roll off surfaces passively
Full case study
The lotus leaf has been a symbol of purity in many cultures for thousands of years — a flower that rises from muddy water yet remains spotless. The scientific explanation was not understood until 1975, when botanist Wilhelm Barthlott used scanning electron microscopy to reveal the leaf's secret: a surface covered in tiny waxy pillars about 10 micrometres high, each topped with even tinier waxy crystals. This hierarchical roughness makes the surface superhydrophobic: water droplets sit on top of the air pockets between pillars, barely touching the surface. They form near-perfect spheres with contact angles of up to 170°. As they roll off, they pick up and carry away dust, pollen, and other particles — a self-cleaning mechanism that requires no energy. Sto AG commercialised the first lotus-effect building paint (Lotusan) in 1999. It remains one of the highest-selling exterior architectural coatings in Europe. Applications have since expanded to self-cleaning textiles (used in outdoor furniture, sportswear, and hospital gowns), solar panels that maintain efficiency in dusty conditions, and medical device surfaces that resist biofilm formation. The lotus effect is now one of the best-studied examples of functional surface design, with over 10,000 academic papers published on its applications.