The Fort Worth Press - Webb Telescope: What will scientists learn?

USD -
AED 3.672498
AFN 65.000053
ALL 79.569641
AMD 362.816706
ANG 1.790365
AOA 918.000007
ARS 1506.995597
AUD 1.4022
AWG 1.80125
AZN 1.6977
BAM 1.695609
BBD 2.01466
BDT 123.160418
BGN 1.683441
BHD 0.377118
BIF 2991.820156
BMD 1
BND 1.273738
BOB 10.998357
BRL 5.139103
BSD 1.000308
BTN 95.98391
BWP 13.567066
BYN 3.037656
BYR 19600
BZD 2.011747
CAD 1.393965
CDF 2312.498613
CHF 0.819025
CLF 0.024146
CLP 953.390392
CNY 6.71145
CNH 6.70801
COP 3127.97
CRC 447.438348
CUC 1
CUP 26.5
CVE 95.595821
CZK 21.07715
DJF 178.127262
DKK 6.48015
DOP 59.048684
DZD 133.802983
EGP 52.024303
ERN 15
ETB 163.385076
EUR 0.86684
FJD 2.21295
FKP 0.741937
GBP 0.743225
GEL 2.554668
GGP 0.741937
GHS 11.488194
GIP 0.741937
GMD 73.501592
GNF 8795.314945
GTQ 7.636255
GYD 209.277425
HKD 7.84495
HNL 26.847168
HRK 6.530797
HTG 130.738787
HUF 315.984007
IDR 17658
ILS 3.031403
IMP 0.741937
INR 95.88005
IQD 1310.410896
IRR 1374600.000125
ISK 121.197395
JEP 0.741937
JMD 157.856864
JOD 0.708978
JPY 155.061982
KES 129.559875
KGS 87.4499
KHR 4050.422208
KMF 427.000252
KPW 900.000318
KRW 1367.580244
KWD 0.30843
KYD 0.833583
KZT 444.773881
LAK 22392.336201
LBP 89575.662472
LKR 331.544497
LRD 173.548166
LSL 16.285389
LTL 2.95274
LVL 0.60489
LYD 6.353115
MAD 9.432659
MDL 17.439779
MGA 4325.19127
MKD 53.344315
MMK 2099.62457
MNT 3595.075141
MOP 8.082447
MRU 40.051151
MUR 47.219983
MVR 15.401643
MWK 1734.543043
MXN 17.139401
MYR 4.044801
MZN 63.910224
NAD 16.285247
NGN 1325.990033
NIO 36.811146
NOK 9.35275
NPR 153.579928
NZD 1.735375
OMR 0.384507
PAB 1.000282
PEN 3.355918
PGK 4.522953
PHP 62.724942
PKR 277.25311
PLN 3.76858
PYG 5918.765443
QAR 3.636395
RON 4.558397
RSD 101.741021
RUB 84.427175
RWF 1475.913668
SAR 3.753075
SBD 8.03625
SCR 13.656342
SDG 601.499446
SEK 9.785001
SGD 1.27333
SHP 0.742225
SLE 24.640201
SLL 20969.491881
SOS 571.673797
SRD 37.749718
STD 20697.981008
STN 21.240534
SVC 8.752834
SYP 13002.000254
SZL 16.283395
THB 33.2485
TJS 9.226022
TMT 3.51
TND 2.928519
TOP 2.40776
TRY 48.657597
TTD 6.782056
TWD 31.779202
TZS 2645.628037
UAH 44.609389
UGX 3916.077853
UYU 40.244484
UZS 11793.315705
VES 841.184017
VND 25998.5
VUV 118.157011
WST 2.736734
XAF 568.609718
XAG 0.015444
XAU 0.00023
XCD 2.70255
XCG 1.802758
XDR 0.707052
XOF 568.609718
XPF 103.393717
YER 236.496653
ZAR 16.26826
ZMK 9001.198788
ZMW 19.630588
ZWL 321.999592
SSP 5655.283496
MXV 1.943375
  • CMSC

    0.2130

    20.533

    +1.04%

  • NGG

    1.6700

    76.6

    +2.18%

  • RBGPF

    0.0000

    69.99

    0%

  • RIO

    0.1500

    97.41

    +0.15%

  • RELX

    0.0900

    34.31

    +0.26%

  • GSK

    0.1600

    50.17

    +0.32%

  • RYCEF

    0.2600

    19.3

    +1.35%

  • AZN

    0.8900

    162.74

    +0.55%

  • VOD

    -0.1150

    17.565

    -0.65%

  • BTI

    -0.1550

    56.365

    -0.27%

  • BP

    -1.2400

    45.72

    -2.71%

  • JRI

    0.0200

    11.64

    +0.17%

  • CMSD

    0.2000

    20.27

    +0.99%

  • BCC

    0.5200

    76.45

    +0.68%

  • BCE

    -0.3500

    22.55

    -1.55%

Webb Telescope: What will scientists learn?
Webb Telescope: What will scientists learn? / Photo: © NASA/AFP

Webb Telescope: What will scientists learn?

The James Webb Space Telescope's first images aren't just breathtaking -- they contain a wealth of scientific insights and clues that researchers are eager to pursue.

Text size:

Here are some of the things scientists now hope to learn.

- Into the deep -

Webb's first image, released Monday, delivered the deepest and sharpest infrared image of the distant universe so far, "Webb's First Deep Field."

The white circles and ellipses are from the galaxy cluster in the foreground called SMACS 0723, as it appeared more than 4.6 billion years ago -- roughly when our Sun formed too.

The reddish arcs are from light from ancient galaxies that has traveled more than 13 billion years, bending around the foreground cluster, which acts as a gravitational lens.

NASA astrophysicist Amber Straughn said she was struck by "the astounding detail that you can see in some of these galaxies."

"They just pop out! There is so much more detail, it's like seeing in high-def."

Plus, added NASA astrophysicist Jane Rigby, the image can teach us more about mysterious dark matter, which is thought to comprise 85 percent of matter in the universe -- and is the main cause of the cosmic magnifying effect.

The composite image, which required a 12.5 hour exposure time, is considered a practice run. Given longer exposure time, Webb should break all-time distance records by gazing back to the first few hundred million years after the Big Bang, 13.8 billion years ago.

- The hunt for habitable planets -

Webb captured the signature of water, along with previously undetected evidence of clouds and haze, in the atmosphere surrounding a hot, puffy gas giant planet called WASP-96 b that orbits a distant star like our Sun.

The telescope achieved this by analyzing starlight filtered through the planet's atmosphere as it moves across the star, to the unfiltered starlight detected when the planet is beside the star -- a technique called spectroscopy that no other instrument can do at the same detail.

WASP-96 b is one of more than 5,000 confirmed exoplanets in the Milky Way. But what really excites astronomers is the prospect of pointing Webb at smaller, rocky worlds, like our own Earth, to search for atmospheres and bodies of liquid water that could support life.

- Death of a star -

Webb's cameras captured a stellar graveyard, in the Southern Ring Nebula, revealing the dim, dying star at its center in clear detail for the first time, and showing that it is cloaked in dust.

Astronomers will use Webb to delve deeper into specifics about "planetary nebulae" like these, which spew out clouds of gas and dust.

These nebulae will eventually also lead to rebirth.

The gas and cloud ejection stops after some tens of thousands of years, and once the material is scattered in space, new stars can form.

- A cosmic dance -

Stephan's Quintet, a grouping of five galaxies, is located in the constellation Pegasus.

Webb was able to pierce through the clouds of dust and gas at the center of the galaxy to glean new insights, such as the velocity and composition of outflows of gas near its supermassive black hole.

Four of the galaxies are close together and locked in a "cosmic dance" of repeated close encounters.

By studying it, "you learn how the galaxies collide and merge," said cosmologist John Mather, adding our own Milky Way was probably assembled out of 1,000 smaller galaxies.

Understanding the black hole better will also give us greater insights into Sagittarius A*, the black hole at the center of the Milky Way, which is shrouded in dust.

- Stellar nursey -

Perhaps the most beautiful image is that of the "Cosmic Cliffs" from the Carina Nebula, a stellar nursery.

Here, for the first time, Webb has revealed previously invisible regions of star formation, which will tell us more about why stars form with certain mass, and what determines the number that form in a certain region.

They may look like mountains, but the tallest of the craggy peaks are seven light years high, and the yellow structures are made from huge hydrocarbon molecules, said Webb project scientist Klaus Pontoppidan.

In addition to being the stuff of stars, nebular material could also be where we come from.

"This may be the way that the universe is transporting carbon, the carbon that we're made of, to planets that may be habitable for life," he said.

- The great unknown -

Perhaps most exciting of all is journeying into the unknown, said Straughn.

Hubble played a key role in discovering that dark energy is causing the universe to expand at an ever-growing rate, "so it's hard to imagine what we might learn with this 100 times more powerful instrument."

J.Ayala--TFWP