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China continues to accelerate its bid to grab the initiative in 21st-century robotics and artificial intelligence development as the next emerging global powerhouse. Small wonder that the world’s leading manufacturing giant has already raced past the rest of the world as a major user of robots.

According to the China Robot Industry Alliance, the country is already a flourishing hub for consumer robotics and is poised for a radical transition from its human-based workforce to an automated Artificial Intelligence or AI-based alternative. Its recent unveiling of the incredibly adept and efficient personal robot BIG-i is a pertinent example. Dubbed “butler,” this humanoid is primarily a service robot with the programmed ability to aid homeowners in the performance of a wide variety of household errands. It can easily track the location of various household appliances and transport items from one point to the next by employing its claw-like mechanical hands.

China Accelerates Bid For Global Dominance
[Image via Shutterstock]BIG-i was designed by Dr. Tin Lun Lam, a research fellow at the Chinese University of Hong Kong who had previously designed the “Treebot,” the first biologically inspired tree-climbing robot equipped with a highly advanced maneuvering mechanism.

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Quantum computers have been hailed for their revolutionary potential in everything from space exploration to cancer treatment, so it might not come as a surprise that Europe is betting big on the ultra-powerful machines.

A new €1 billion ($1.13 billion) project has been announced by the European Commission aimed at developing quantum technologies over the next 10 years and placing Europe at the forefront of “the second quantum revolution.”

The Quantum Flagship announced will be similar in size, time scale and ambition as the EC’s other ongoing Flagship projects: the Graphene Flagship and the Human Brain Project. As well as quantum computers, the initiative will aim to address other aspects of quantum technologies, including quantum secure communication, quantum sensing and quantum simulation.

A new method to create light while retaining the energy using Q-Dot technology.


All light sources work by absorbing energy – for example, from an electric current – and emit energy as light. But the energy can also be lost as heat and it is therefore important that the light sources emit the light as quickly as possible, before the energy is lost as heat. Superfast light sources can be used, for example, in laser lights, LED lights and in single-photon light sources for quantum technology. New research results from the Niels Bohr Institute show that light sources can be made much faster by using a principle that was predicted theoretically in 1954. The results are published in the scientific journal, Physical Review Letters.

Researchers at the Niels Bohr Institute are working with quantum dots, which are a kind of artificial atom that can be incorporated into optical chips. In a quantum dot, an electron can be excited (i.e. jump up), for example, by shining a light on it with a laser and the electron leaves a ‘hole’. The stronger the interaction between light and matter, the faster the electron decays back into the hole and the faster the light is emitted.

But the interaction between light and matter is naturally very weak and it makes the light sources very slow to emit light and this can reduce energy efficiency. Already in 1954, the physicist Robert Dicke predicted that the interaction between light and matter could be increased by having a number of atoms that ‘share’ the excited state in a quantum superposition.

A military-grade drone-killing ‘death ray’ that can reportedly destroy unmanned aerial vehicles (UAV) from up to 6 miles away could soon be in use in UK airports following a suspected collision with a passenger jet at Heathrow last Thursday.

The collision, which led to a drone ban over London during US President Barrack Obama’s UK visit, has forced authorities to consider more aggressive countermeasures.

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