linkedin post 2015-11-26 05:03:51

Uncategorized
GREATER EFFICIENCY. "Recent technological progress in physics in harnessing quantum mechanics for information processing and encryption puts the question in a different light: are there any biological systems that use quantum mechanics to perform a task that either cannot be done classically, or can do that task more efficiently than even the best classical equivalent?" https://lnkd.in/eRUdQZj View in LinkedIn
Read More

linkedin post 2015-11-24 05:32:52

Uncategorized
BIOQUANTUMS. "Some examples of the biological phenomena that have been studied in terms of quantum processes are the absorbance of frequency-specific radiation (i.e., photosynthesis and vision); the conversion of chemical energy into motion; magnetoreception in animals, DNA mutation and brownian motors in many cellular processes." https://lnkd.in/epQ9hra View in LinkedIn
Read More

linkedin post 2015-11-24 05:29:55

Uncategorized
ENERGY CONVERSION. "Fundamental biological processes that involve the conversion of energy into forms that are usable for chemical transformations are quantum mechanical in its nature. These processes involve chemical reactions themselves, light absorption, formation of excited electronic states, transfer of excitation energy, transfer of electrons and protons, etc." https://lnkd.in/eTYijqm View in LinkedIn
Read More

linkedin post 2015-11-24 05:25:28

Uncategorized
TURNING POINT. "In 2010, researchers from the first group published evidence of quantum coherence in their bacterial complex at ambient temperatures — showing that coherence is not just an artefact of cryogenic laboratory conditions, but might actually be important to photosynthesis in the real world." (GD Fleming et al.,) https://lnkd.in/eDJed9B View in LinkedIn
Read More

linkedin post 2015-11-27 05:30:54

Uncategorized
BIOLOGICAL HYPERCOMPUTATION. "The framework here is computational, setting out that life is not a standard Turing Machine. Living systems, we claim, hypercompute, and we aim at understanding life not by what it is, but rather by what it does. The distinction is made between classical and nonclassical hypercomputation. We argue that living processes are nonclassical hypercomputation." https://lnkd.in/eMfJx9k View in LinkedIn
Read More