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Science strikes on-line deal with China

The deal was hatched in discussions between Ellis Rubinstein, editor of Science , and Zhou Guangzhao, president of the Chinese Association for Science and Technology. A group of Chinese funding agencies have joined forces to pay for the deal. China is seen by many publishers as an expanding market over the next few years. The advantage of dealing with a single consortium has allowed AAAS to offer large discounts on the deal, according to Rubinstein. Another unusual aspect of the agreement is that the AAAS is leasing a Internet connection to pipe Science products direct to China. The deal is for one year though both sides expect it to run for longer.

Concerns about Next Wave first surfaced on DAPHNET, an on-line discussion group about women in science and engineering. Some users are worried about the content of Next Wave. “There is perhaps a danger that it may become simply a publication with a US focus plus titbits from elsewhere, ” says Elizabeth Johnson, a physicist from Imperial College in London. “The Net is leading people to expect much more than this.”

Rubinstein believes that concerns about Next Wave have been blown up out of all proportion, particularly rumours about the cost of national site licences. “We are, after all, a not-for-profit organisation” says Rubinstein. “We are chartered to serve the scientific community as well as it can and not to reap huge profits. This seems not to be well understood by some of the e-mail discussants in the UK.” Rubinstein also argues that as more countries subscribe to Next Wave, the amount of international content will increase. Next Wave hopes to become profitable in 1999.

Small in size, high on impact

Secrets of success

One of the reasons for this high impact is that Scandinavian physicists specialize in niche areas. According to Ole Hansen, director of the Niels Bohr Institute at the University of Copenhagen, they prefer to identify an interesting area and build up a wealth of knowledge and expertise in it. For example, he says, Denmark is due to launch the Ørsted satellite later this year. Named after the Danish physicist who first demonstrated empirical evidence of a link between electricity and magnetism, the mission involves a small satellite with a single objective: to map the Earth’s magnetic field.

Other Scandinavian countries also excel at niche research. “Finland has a leading position in some research areas, ” says Mikko Paalanen, whose laboratory at the Helsinki University of Technology has specialized in ultra-low-temperature physics since 1965. “We hold the present low-temperature world record – 280 picoKelvin – achieved in cooling the nuclei of rhodium metal in 1993, ” he says (Physics World July 1993 pp24-25). This expertise has given Finnish researchers an advantage in other areas too. “Using low-energy solid-state physics to understand cosmological phenomena is becoming more popular, ” says Paalanen. “We are doing some of the leading experiments on this front.”

In Sweden, physicists employ the same approach. “Swedish scientists define the forefront of research in some special fields, such as my own [materials science], ” says Svante Svensson of Uppsala University. He chairs the user organization of the MAX Laboratory at Lund University, which provides synchrotron radiation to a number of beamlines for surface science, and atomic and molecular science.

Denmark: increasing investment

For Denmark the future could be as glorious as the past. In recent years, physics there has flourished as the country has increased its spending on science. Indeed, there are more than 60 different public, private and international sources of science funding in Denmark. In 1996 the country spent 1.8% of its gross domestic product (GDP) on R&D, according to the Danish Ministry of Research. The government has since set about increasing the proportion to 2-3%. The budget of the Natural Science Research Council has doubled between 1993 and 1997, and its budget for 1998 to 2002 is set to increase by almost a third to DKr 415m (about £35m).

Funding for basic research also comes from the Danish National Research Foundation. Since it was established in 1991, the foundation has used about DKr 800m to create and fund 23 centres for basic research. The centres – such as the Aarhus Centre for Advanced Physics at Aarhus University – each have a five-year operating and grant framework, with considerable freedom and responsibility. The Natural Science Research Council has also established six centres, including the Centre for Chaos and Turbulence Studies at the Niels Bohr Institute in Copenhagen, with grants of DKr 2-5m per annum over five years.

“Over the last five years the external funding of projects has not been a great problem, ” says Hansen. However, there are some teething problems with distributing the money. “In 1998 the research councils are having temporary cash-flow problems – research funding is increasing but the funds distributed by the research councils are somewhat lower, ” he says.

The research is also more directed than previously, with the introduction of new programmes, such as FREJA (female researchers in joint action) and THOR (technology by highly oriented research), and demands for more collaboration with government research institutions. “There is a little more political control than with the basic research funding, ” says Hansen.

Sweden: funds squeezed

The position of physics in Denmark contrasts with that in Sweden, where funding for physics is steadily falling. Budget figures released by the Swedish Natural Science Research Council – a highly respected organization that has been the backbone of Sweden’s basic research system for the last 50 years – show that in 1997 it spent some SKr 121.5m (about £9.2m) on physics, representing a fall of about 10% since 1995.

The pressure on funds is threatening big science (see for scandinavia’s big science international collaborations). A year ago Sweden considered withdrawing from CERN, the European particle physics laboratory, to meet a proposed budget cut of SKr 150m. The subscription was coincidentally about the amount that the government wanted to save on the 1998 research budget. “In September [1997], when the government was deciding how to implement cuts in the 1998 research budget, the minister decided not to withdraw from CERN, ” says Per Carlson, professor of particle physics at Stockholm’s Royal Institute of Technology. The matter is be discussed at the Swedish Natural Science Research Council meeting next month.

Sweden, too, is exerting more political control over what is funded. “Now, the European Union funding system and the implementation of the so-called foundations for strategic research are forcing research to define itself as more ‘applied’, ” says Svensson. “Many active researchers in Sweden are not convinced that the outcome is entirely positive, ” he adds. “The fact that research defines itself as ‘applied’ does not mean that it has quality, or that it is applied. Researchers adapt to the situation as most actors in society adapt to external pressure.”

Norway: under pressure

In Norway, things are not much better. “Science support is not good and is getting worse, having dropped from 1.9% to 1.7% of GDP in the past few years, ” says Jens Feder, a physicist at the University of Oslo. “There is an over-representation of the social sciences. Norway publishes less per capita in physics than other countries, ” he adds. However, the research council recently proposed boosting Norwegian research funding to average OECD levels, which would require an injection of NKr 5bn (about £400m) or 30% of Norway’s total research budget.

The science and technology division of the Research Council of Norway has a budget of NKr 575.3m for 1998, which is 1.6% higher than the revised 1997 budget. However, money has been transferred from the Ministry of Education, Research and Ecclesiastical Affairs to the Ministry of Commerce, Trade and Industry. This reallocation of funds has weakened basic research, says Kristian Fossheim, professor of physics at the Norwegian University of Science and Technology in Trondheim. “The research council suffers from the disease that only industry is really important and only the short perspective is needed, ” he says. The focus of work at the university has drifted away from high-tech science to low-tech industrial applications, he adds.

Physicists are also concerned that the Research Council of Norway has not selected any new physics areas during its five-year life. Also, the council is split about big science: some members think that it should be cut back and the membership fees used for something other than physics. In 1997 the Norwegian government paid NKr 84m to CERN and NKr 70m to the European Space Agency. Other European programmes have received a mixed reaction. “Norway’s full participation in the European Union’s science programme has caused frustrations owing to high rejection rates for proposals, ” says Fossheim. “But there have been benefits, including closer links between Norwegian physics and the rest of Europe and greater interaction with European physicists.”

Finland: university dominated

Finland spends a large proportion of its GDP on R&D – estimated to be 2.7% in 1997 – and this figure is set to rise. The government recently proposed giving the research councils 31% more money. Accordingly, R&D funding should be 2.9% of GDP from 1999.

“Finland’s physics performance depends totally on the universities, ” says Juhani Keinonen of the department of physics at the University of Helsinki. “Many companies have applied research in physics, but their role is not important in literature, ” he says. He also highlights the role of the universities in applied research. “Funding is very strongly focused on applications, ” he says. “The relevance of research to society is thus guaranteed. However, there is a danger that basic research will wither away.”

Research funding has also concentrated on salaries and equipment, which have increased so fast that Finland has not been able to fund larger national-scale research facilities. Keinonen would like to see a shift in funding towards research projects as a whole. However, he is satisfied with the responsiveness of the present system. “Finnish physicists think the system is flexible with respect to new trends and can react fast to educate new researchers in new fields, ” he says.

However, the Research Council for Natural Sciences and Engineering, one of the four research councils under the Academy of Finland, warns that the country’s small population and the low status of mathematics and science in schools are obstacles to growth and development.

Future concerns

Despite the relative strength of their subject in Scandinavia, physicists are concerned about the future. Many university staff will retire in the next few years, and there are worries that there will not be enough young people to replace them. “There are some 95 permanent physics positions at the University of Copenhagen, ” says Hansen. “About 65 people will retire between 1998 and 2011, which is a bomb under continuity. [However, ] we have been allowed to use some of our operating funds as special remuneration to recruit a new physicist every nine months to replace some of those who will be leaving, ” he says.

In the longer term, Danish physicists are also worried that young people are turning away from physics. “Between 1000 and 1500 youngsters take physics and mathematics at high level at sixth-form college, giving them entry to physics at university, ” says Hansen. “[But] the number who choose physics at university has fallen by 15% over the past three or four years.”

The situation is similar at the University of Aarhus. “My greatest concern is the stagnating or falling number of people wanting to study physics, ” says Flemming Besenbacher of the Institute of Physics and Astronomy at Aarhus University. “Not enough physicists are being trained to meet the requirements of business.”

As in the other top scientific nations, young researchers also need encouragement. To advance the work done by young researchers, both Hansen and Jens Knudsen, an astrophysicist at the Ørsted Laboratory in Copenhagen, say that research money should be targeted at talented individuals. “Every second or third year we get an obvious talent, ” says Knudsen, “[but] we have too few positions for really outstanding young people. Give them the opportunity and they will create progress, ” he says.

Japan increases contribution to LHC

The LHC will be a 14 TeV proton-proton collider. High-energy physicists will use to LHC to search for the Higgs particle (or particles), which are thought to explain the origins of mass. It will also be used to search for “supersymmetric” particles and to explore why the universe is made entirely of matter, even though it is thought that the Big Bang created equal amounts of matter and anti-matter. Heavy-ion experiments in nuclear physics are also planned.

Part of the Japanese funds will go towards developing the superconducting quadrupole magnets needed for the collider. Each magnet is about 15 metres long and keeps protons focused in the beam as other magnets accelerate them to close to the speed of light. The magnets are being developed in close collaboration with KEK laboratory in Tsukuba. Japanese physicists are also helping to build ATLAS, one of the two general purpose detectors being constructed for the LHC.

Pollution: cleaner coronas

Coronas form when a stream of gas passes between two electrodes maintained at different voltages. The potential difference causes energetic electrons to collide with the gas, producing a glowing plasma that consists of negative ions and radicals. This is a negative discharge corona.

However, if dust builds up on the equipment, a positive discharge corona is produced. Dust is a poor conductor and causes an intense electric field to build up on the electrode. This field is proportional to the resistivity of the dust. As the intensity of the field approaches the breakdown strength of the gas, it generates a plasma containing positive ions and radicals. However, these particles do not oxidise the impurities in the gas.

Patent 5733360 describes a new electrode design that optimises all parts of a corona discharge reactor to achieve maximum efficiency. One electrode consists of an array of wires embedded in a single metal sheet. The second electrode is a porous metal plate covered by a woven fibreglass cloth. Rapid voltage pulses are applied to the first electrode as the gas containing the pollutants is pumped through the pores in the second electrode towards the first. The pores are positioned almost exactly opposite the wires in the first electrode, which maximises the number of electrons hitting the covered plate to generate a positive corona. As the positive corona is generated by the electrodes, an intense negative corona current is created in the porous material. This increases the contact between the gas containing the impurities and the ions and radicals in the plasma, and therefore increases the efficiency of the system.

Birth of a black hole

The event is unusual in that the star appears to have been heavy enough – possibly 100 times the mass of the Sun – to collapse back on itself and form a black hole instead of completely blowing apart. Only a few of the hundred million stars in our galaxy are this massive.

Measurements made at the Anglo-Australian Telescope suggest that the fireball is only 100 million light-years away, virtually in our back yard. Further observations have shown that the star is doubling its energy output at visible and radio wavelengths every week. And the gamma ray emissions from the star are already ten times stronger than when first observed.

Last week an international team of astronomers reported that a gamma-ray burst in December thought to have been caused by a collision between two black holes, had released more energy than any object ever observed before (see PhysicsWeb story).

Nations breach methodology of science tests

The TIMSS exercise tests students at the end of secondary school education in four subjects: general science, physics, mathematics, and advanced mathematics. But according to Rotberg, only 6 of the 16 countries participating in the physics tests met the international sampling guidelines specified by TIMSS. In general science only 5 out of 21 countries complied with the guidelines. For example, countries with a high failure rate for the completion of high school education, such as Italy (51%), had higher scores compared with those with low failure rates, such as the Czech Republic (9%), because low-achieving children have already left school. The ages of students entered in the physics and maths tests vary between 17 and 21, while the length of time spent at school can range from 10 years to 14.

The tables themselves also suggest inconsistencies in the tests. France, for example, comes 1st in advanced mathematics but only 7th in mathematics and 13th in general science and physics. The Russian Federation is 2nd and 3rd in advanced mathematics and physics, and 15th and 16th in the mathematics and science general tests.

Rotberg believes that alternative indicators of education quality – such as the availability of qualified scientists and engineers in the work force and the number of women and minority students in science and engineering – would give a better indication of a country’s ability in science and mathematics.

Quantum computers shape up

The two recent breakthroughs exploit the quantum properties of nuclear spins, which can point “up” or “down” relative to an applied electric or magnetic field. A team of physicists from IBM, Stanford University and MIT in the US used nuclear magnetic resonance to manipulate the spins of hydrogen and carbon-13 nuclei in a chloroform (CHCl3) molecule (Nature 393 143). Using a sequence of electromagnetic pulses they were able to perform a quantum algorithm to determine whether an unknown mathematical function was constant or balanced. However, it will be difficult to scale up this approach to a working quantum computer.

A more realistic approach would be to design a silicon-based quantum computer – and this is what Bruce Kane of the University of New South Wales in Sydney, Australia, has proposed (Nature 393 133). The “quantum bits” in Kane’s proposal are isolated phosphorous ions in a silicon crystal. The state of the spins are set by voltages applied to metal contact gates, and their interactions are controlled by other metal gates. Kane has also devised ways for getting all of the spins to point in the same direction at the start of a calculation, and for reading out the results at the end – two of the biggest challenges in quantum computation. Kane admits that building such a quantum computer will involve “substantial challenges”, but he points out that the electronics industry is already working on similar problems as it prepares for the next generation of conventional chips. The main technological challenges are to find ways to accurately position the phosphorus ions and to reduce defects in the device.

India tests nuclear bombs

The British Gelogological Survey registered Monday’s hydrogen explosion at 4.7 on the Richter scale – similar to a light earthquake. But the failure of seismograph stations to register today’s explosions highlights some of the problems with a nuclear test ban. The CTBT says that monitoring stations only need to detect explosions from bombs averaging more than 1000 tonnes of explosives, which would only produce a ground ‘shake’ of 1 nanometre in size. Below this level, noise from other events, such as mudslides, earthquakes or building construction sites interfere with nuclear ‘signatures’. Smaller explosions, particular those taking place underground, are therefore hard to observe.

For this reason, the treaty also implements on-site inspections, radionuclide monitoring and acoustic sensors to look for nuclear testing on known test sites. In all cases it is unlikely that underground sub-kiloton yields will leave enough signatures to pinpoint the location of any clandestine explosions outside these areas.

India has so far refused to sign the 1968 Nuclear Non-Proliferation Treaty (NNPT) and the Comprehensive Test Ban Treaty. It claims the treaties discriminate in favour of the the official ‘nuclear’ club – the US, Russia, UK, France, and China – who can hold onto and refine nuclear arms indefinitely and with no commitment to disarm.

The international response to the news has been vocal, but only the US and Japan, the largest donors of economic aid to India, have introduced sanctions against the country. Pakistan, which is only 93 miles from the test site, has threatened to implement its own nuclear weapons programme if India builds up a nuclear arsenal. The explosions also undermines the NNPT observed by 185 countries.

United Nations Secretary – General Koffi Annan expressed “deep regret” over the blasts and the European Union issued a statement voicing dismay over India’s decision. However, non-profit organisations such as Abolition 2000 UK say that India should not get all the blame. “Unless all the nuclear weapon states begin serious multilateral negotiations now, nuclear weapon proliferation is inevitable” they say.

Nanotransistors at room temperature

The biggest challenge in making a single-molecule device is achieving electrical contact between individual molecules. Now new techniques that vaporize carbon to form nanotubes, and deposit material onto silicon oxide substrates, have made it possible to improve the electrical contact. The Delft team made a three-terminal device consisting of the nanotube and two metal electrodes. Electrical measurements on the nanotube shows that it can be described by the semiclassical band-bending models that are used for traditional semiconductor devices. Fabrication of the device – which the team call a single carbon nanotube field-effect transistor or TUBEFET – is described as “relatively straightforward”.

The biggest bang since the big bang

The 50 second burst, known as GRB971214, was detected by the two satellites. The Italian/Dutch BeppoSAX satellite gave the precise position of the blast, while NASA’s Compton Gamma Ray Observatory measured its brightness. Further observations at different wavelengths by a collection of ground and space-based telescopes measured the distance to the optical counterpart of the burst to be 12 billion light years. The Hubble Space Telescope then provided a more detailed image of the ‘host’ galaxy. The vast distance to the galaxy, plus the brightness of the burst, implies an enormous energy release – several hundred times that of a supernova, until now the most energetic phenomenon known in the universe. Even more energy may have been released as neutrinos and gravity waves.

“Most of the theoretical models proposed to explain these bursts cannot explain this much energy, ” said Shrinivas Kulkarni of Caltech, a co-author on two of the papers. “However, there are recent models, involving rotating black holes, which can work. On the other hand, this is such an extreme phenomenon that it is possible we are dealing with something completely unanticipated and even more exotic.”

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