FP7Individual fellowship2014–2016

NEURONQ · Quantum magnetic sensing of neurons using nitrogen-vacancy centers in diamond

FP7 — People (Marie Curie Actions)

Duration
2014-06-01 → 2016-05-31
EU contribution
€256,148
Participants
1
Scheme
MC-IEF

Lines connect the coordinator with its partners.

Results in brief

Quantum magnetic sensing of neurons using nitrogen-vacancy centers in diamond

Brain research and quantum technology are at the focus of 21st century science. Although theoretical and experimental studies have provided some insights regarding the mechanisms with which the brain acquires, represents and stores information, a comprehensive theory of the brain and the underlying neural information processing is still missing. Experimental techniques to study brain processes at different levels of description are therefore of fundamental importance for brain research. The NeuronQ project aims towards the development of an ultrasensitive quantum-sensor for real-time recording of neural activity on the sub-neuron, single neuron and network level using nitrogen-vacancy centers in diamond. The nitrogen-vacancy defect (or NV center) in the crystal structure of the diamond is a unique "atom-like" system with quantum properties including sharp optical and microwave transitions, Zeeman sublevels and the ability to undergo optical pumping. The spin states of the NV center, which can be readout optically using electron spin resonances, can interact with neural magnetic and electric fields, thus, providing the underlying principle for an NV center based neuroimaging device with unprecedented spatiotemporal resolution. In the first stage of the NeuronQ project we have assembled the main building blocks for this technology and we have investigated different sensing protocols using nanofabricated chips with micro-electrode arrays to simulate neural magnetic and electric field conditions. The experimental studies have been accompanied by theoretical modeling and computer simulation to estimate the effect of the interaction of a NV center based quantum sensor with neural excitations. In parallel, experiments of neural cell culture growths on bulk diamonds and delivery of nanodiamonds to neural tissue - prerequisites for developing a functional bio-sensor - have been performed. Together with our European partners we are now considering how to progress to the next level and put together the first functioning models of a new device. A NV center based neural sensor will presumably have significant impact on basic neuroscience research and the understanding of neurological disorders as well as lead to new neurotechnology, such as novel screening methods for neuropharmaceutical drug development, brain-machine interfaces and low-cost MEG-like brain imaging devices.

Data: CORDIS, © European Union

Project objective

Brain research and quantum technology are at the focus of 21st century science. Although theoretical and experimental studies have provided some insights regarding the mechanisms of how the brain acquires, represents and stores information, a comprehensive theory of the brain and the underlying neural information processing is still missing. Experimental techniques to study brain processes on different levels of description, notably the sub-neuron (synaptic, dendritic and axonal), single neuron and neural network level, are therefore of fundamental importance for brain research. Recently, a new promising technique in solid state physics has emerged for measuring electric and magnetic fields at the nanometer scale with unprecedented spatiotemporal resolution (sub-micron and sub-ms range). The nitrogen-vacancy (NV) defect in diamond is a unique ultra-sensitive quantum device that can sense external magnetic and electrical fields via its spin states, which can be read-out optically using electron spin resonances. The NEURONQ project aims towards the development of an NV centre based neuroimaging system for real-time recording of neural activity on the sub-neuron, neuron and neuron network level under ambient conditions. The NEURONQ projects combines both disciplines, brain research and quantum technology, into an exciting multidisciplinary research effort by combining expertise from physicists, neuroscientists and nanoengineers. The NEURONQ project is expected to have impact of paramount importance for basic neuroscience research and neurotechnology, and thus, will significantly contribute to European scientific and technological competitiveness and excellency.

Original text from CORDIS.

Participants

  • BEN-GURION UNIVERSITY OF THE NEGEV · Beer ShevaCoordinatorIsrael

Links

Data: CORDIS, © European Union