-
Wildfire flares up again in Greece as water bombers deployed
-
England, Wales had driest July on record: Met Office
-
Greece wildfire expert says season 'one of the worst' in a decade
-
French court rejects pro-Kremlin commentator's deportation appeal
-
Sandoz strikes US settlements to resolve generic drug price dispute
-
Oil slides, stocks rise on hopes of deal to end Mideast war
-
Israel conveys 'concerns' to US on Gaza plan, keeps up strikes on territory
-
EU chief urges 'united action' on borders after Ceuta migrant rush
-
Inside Capital Regency's Market Expansion and User Acquisition
-
Oil prices slide on hopes of deal to end Mideast war
-
Israel conveys 'concerns' to US on Gaza plan and keeps striking
-
Dortmund sign Greek teenager Karetsas from Genk
-
Bangladesh measles outbreak drives families into debt: aid groups
-
Detained Aung San Suu Kyi meets Red Cross delegate in Myanmar
-
BitMart、説明を迫られる:SNC SCANDIC COINの出金は8日経っても依然としてTXIDなし
-
설명 압박에 직면한 BitMart: 8일이 지나도 여전히 TXID가 없는 SNC SCANDIC COIN 출금
-
Seoul issues first 'severe heatwave warning' under new system
-
BitMart تحت ضغط لتقديم توضيحات: عمليات سحب عملة SNC SCANDIC COIN لا تزال بدون معرّف المعاملة (TXID) بعد مرور ثمانية أيام
-
BitMart змушений надати пояснення: виплати в SNC SCANDIC COIN через вісім днів досі без TXID
-
Welsh FA withdraws support for Infantino's FIFA re-election bid
-
BitMart 面臨解釋壓力:SNC SCANDIC COIN 提現八天後仍無 TXID
-
BitMart under pressure to explain: SNC SCANDIC COIN withdrawals still without a TXID after eight days
-
Cycling superstar Pogacar to ride in Vuelta
-
Iran denies negotiating with US after Trump announces talks
-
Water bombers take to skies as Greece battles wildfires
-
What Europe can learn from Australia's 'Black Summer' wildfires
-
Training the UK 'surgeons of the future' using robots
-
Oil prices sink on Iran hopes, yen gains after joint intervention
-
US, Japan join forces to boost yen
-
Wildfires raze neighborhoods in US northwest city of Spokane
-
Survivors recall blasts before deadly Indonesian ferry fire
-
Trump attorney general pick says has reached deal with senators after standoff
-
Detained Suu Kyi meets Red Cross official in Myanmar: president office
-
Star Australian broadcaster faces trial for sexual assault
-
Cuba state energy firm reports new nationwide blackout
-
Oil prices sink on Middle East hopes, yen extends gains after joint intervention
-
US, Japan support yen with first joint intervention since 2011
-
Millions of Thais banish the booze for Buddhist Lent
-
Pegula leads Eala as storms push Washington Open finals to Monday
-
Returning to 'Ted Lasso' after break 'effortless': Hannah Waddingham
-
US dairy industry muscles up thanks to protein craze
-
Trump says new Iran talks set to start after calling off massive attack
-
Leeds rally for 4-2 friendly win over Liverpool
-
Four Al-Fayed survivors told they were trafficking victims
-
Trump says US support for Japanese yen a 'signal of friendship'
-
Ariana Grande withdraws from London musical, seeks to 'step back'
-
Thorbjornsen earns maiden PGA win at Rocket Classic
-
Sudan army drone attack on Darfur court kills 35
-
Greaves steadies West Indies in second Test against Pakistan
-
At least 72 died in Spain's Ceuta migrant rush, Spain says
Observing quantum weirdness in our world: Nobel physics explained
The Nobel Prize in Physics was awarded to three scientists on Tuesday for discovering that a bizarre barrier-defying phenomenon in the quantum realm could be observed on an electrical circuit in our classical world.
The discovery, which involved an effect called quantum tunnelling, laid the foundations for technology now being used by Google and IBM aiming to build the quantum computers of the future.
Here is what you need to know about the Nobel-winning work by John Clarke of the UK, Frenchman Michel Devoret and American John Martinis.
- What is the quantum world? -
In the classical or "macroscopic" world -- which includes everything you can see around you -- everything behaves according to the trustworthy rules of traditional physics.
But when things get extremely small, to around the scale of an atom, these laws no longer apply. That is when quantum mechanics takes over.
Just one oddity of the quantum world is called superposition, in which a particle can exist in multiple locations at once -- until it is observed, at least.
However scientists have struggled to directly observe quantum mechanics in this "microscopic" world -- which somewhat confusingly cannot be seen through a microscope.
- What is quantum tunnelling? -
Quantum tunnelling is a strange effect that physicists first theorised almost a century ago.
Imagine a man trying to climb a mountain, Eleanor Crane, a quantum physicist at King's College London, told AFP.
In the classical world, if the climber is too tired he will not make it to the other side.
But if a particle is weak in the quantum world, there is still a "a probability of finding it on the other side of the mountain," Crane said.
Because the particle is in superposition, it could have been on both sides of the mountain simultaneously. But if you then, for example, took a picture of the particle, it would then have to pick a side.
- What did the Nobel-winners do? -
In the mid-1980s, Clarke, Devoret and Martinis built a very small -- but not quantum-level -- electrical circuit.
They set it up with two superconductors, which are cooled to almost the lowest possible temperature so they have no electrical resistance.
They then separated the two superconductors with a thin layer of material.
This would break a normal electrical circuit, but thanks to quantum tunnelling, some electrons could appear on the other side.
- Why is that important? -
French physicist Alain Aspect, a 2022 physics Nobel laureate, told AFP that an outstanding question in the field had been whether an object in our macroscopic world could "behave in a quantum way".
By illustrating quantum effects on this "somewhat large object -- though not large on our scale", the new Nobel laureates answered that question with a resounding yes, Aspect said.
Scientists could now observe this quantum effect using a normal microscope, offering a new view of this weird world.
- What about quantum computing? -
The discovery's biggest technological legacy may be that it laid the groundwork for the development of superconducting quantum bits.
While classical computers have bits that work in ones and zeros, quantum bits, or qubits, can exist in two states at once.
This gives them massive potential to spark a range of breakthrough -- though they have yet to fully live up to the hype.
Crane estimated that quantum computers could be powerful enough to "change the course of society" in the next five to 10 years.
The new Nobel laureates "set the foundation for a lot of technology that many companies are investing millions of dollars in right now to try to realise large-scale quantum computers that can actually solve certain types of problems much faster than our classical alternatives," physicist Gregory Quiroz at Johns Hopkins University told AFP.
However there are several other leading techniques in the race to build to build a quantum computer, including neutral atoms and ion traps.
The Nobel-winning work also contributed to "extremely sensitive methods of measuring electromagnetic fields and magnetic fields that rely on these kinds of circuits," Aspect added.
F.Müller--BTB