Human skin has evolved to allow maximum durability and flexibility, according to new research from Binghamton University, State University of New York.
Associate Professor of Biomedical Engineering Guy German, along with former students Christopher Maiorana and Rajeshwari Jotawar have published new research regarding the structure of human skin and the amount of damage it can sustain.
The team created membranes from polydimethylsiloxane (PDMS), an inert and nontoxic material used in biomedical research. They mimicked the structure of mammalian skin by covering a soft, compliant layer with a thinner, stiffer outer later.
The โartificial skinโ then underwent a series of tests to see how much stress it could take to break. Under the pressure of a sharp or blunt rod, the samples indented to form huge divots before breaking. The researchers also made an interesting discovery.
โThereโs a certain structural formation that is optimal,โ said German.
โWe found that when the artificial skin has the same outer (stratum corneum) and inner layer thickness (dermis) as mammalian skin, the rubber membranes maximized both their puncture toughness and deformability. We believe that mammalian skin has evolved or adapted itself to offer the toughest option to mechanical threats while also remaining as deformable as possible.โ
Most organisms have a tougher outer layer that can protect a more compliant layer beneath from threats in their environments. In addition to animals, think about nuts, fruits, insects and even microorganisms.
โMammalian skin offers maximum locomotion and maximum mechanical toughness,โ German said. โIf it went one way, it would be less flexible, or the other way you would get more flexibility but less toughness. So itโs optimized.โ
German and the team also discovered a new type of failure, one that they call coring. If you puncture a material, typically the fracture will begin below the indenter tip, just like piercing a piece of paper with a pencil. But with hyperelastic two-layered materials such as human skin and these artificial skin membranes, fracture occurs far from the indenter tip at large indentation depths. Here, rupture occurs where the membrane is stretched the greatest, on the sides of the divot, leaving a cylindrical core in the membrane. They donโt believe this phenomenon has been observed previously.
German points out that a better understanding about the structure of skin โ and artificial skin โ will help with an array of different technologies, from flexible electronics and medical devices to product packaging, bulletproof vests and treatments for burn victims. All of these potential uses (and more) mean that researching human skin and how it evolved into its current form is increasingly popular in recent years.
โScientists and engineers are attracted to studying skin because itโs difficult to understand,โ he said. โSkin is heterogeneous and structurally very complex.โ
He believes the increase in the power of computers has helped better understand skin biomechanics: โTraditional materials like steel and cement are uniform in composition and easy to characterize. Nowadays, engineers are using their computational know-how to study really complex materials such as skin.โ
IMAGE CREDIT: (ENTER NAMES)





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