↓ Skip to main content

Jamming by shear

Overview of attention for article published in Nature, December 2011
Altmetric Badge

About this Attention Score

  • In the top 25% of all research outputs scored by Altmetric
  • High Attention Score compared to outputs of the same age (96th percentile)
  • Above-average Attention Score compared to outputs of the same age and source (54th percentile)

Mentioned by

news
2 news outlets
patent
2 patents
facebook
1 Facebook page
wikipedia
1 Wikipedia page
reddit
2 Redditors

Readers on

mendeley
540 Mendeley
citeulike
4 CiteULike
You are seeing a free-to-access but limited selection of the activity Altmetric has collected about this research output. Click here to find out more.
Article details
Title
Jamming by shear
Published in
Nature, December 2011
DOI 10.1038/nature10667
Pubmed ID
Authors
Abstract

A broad class of disordered materials including foams, glassy molecular systems, colloids and granular materials can form jammed states. A jammed system can resist small stresses without deforming irreversibly, whereas unjammed systems flow under any applied stresses. The broad applicability of the Liu-Nagel jamming concept has attracted intensive theoretical and modelling interest but has prompted less experimental effort. In the Liu-Nagel framework, jammed states of athermal systems exist only above a certain critical density. Although numerical simulations for particles that do not experience friction broadly support this idea, the nature of the jamming transition for frictional grains is less clear. Here we show that jamming of frictional, disk-shaped grains can be induced by the application of shear stress at densities lower than the critical value, at which isotropic (shear-free) jamming occurs. These jammed states have a much richer phenomenology than the isotropic jammed states: for small applied shear stresses, the states are fragile, with a strong force network that percolates only in one direction. A minimum shear stress is needed to create robust, shear-jammed states with a strong force network percolating in all directions. The transitions from unjammed to fragile states and from fragile to shear-jammed states are controlled by the fraction of force-bearing grains. The fractions at which these transitions occur are statistically independent of the density. Jammed states with densities lower than the critical value have an anisotropic fabric (contact network). The minimum anisotropy of shear-jammed states vanishes as the density approaches the critical value from below, in a manner reminiscent of an order-disorder transition.

Login to access the Attention Digest and the Sentiment Analysis related to this output.

Timeline Attention over time Attention Score history
Login to access the full charts related to this output.
Mendeley demographics

Mendeley demographics

The data shown below were compiled from readership statistics for 540 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Geographical breakdown
Country Count As %
United States 12 2%
France 9 2%
Italy 3 <1%
Germany 3 <1%
United Kingdom 2 <1%
Spain 2 <1%
China 2 <1%
Switzerland 2 <1%
Israel 1 <1%
Other 2 <1%
Unknown 502 93%

Demographic breakdown

Readers by professional status
Readers by professional status Count As %
Student > Ph. D. Student 150 28%
Researcher 87 16%
Student > Master 52 10%
Professor 40 7%
Professor > Associate Professor 40 7%
Other 70 13%
Unknown 101 19%
Readers by discipline
Readers by discipline Count As %
Physics and Astronomy 163 30%
Engineering 126 23%
Materials Science 45 8%
Earth and Planetary Sciences 24 4%
Chemistry 16 3%
Other 39 7%
Unknown 127 24%
Attention Score in Context

Attention Score in Context

This research output has an Altmetric Attention Score of 27. This is our high-level measure of the quality and quantity of online attention that it has received. This Attention Score, as well as the ranking and number of research outputs shown below, was calculated when the research output was last mentioned on 28 April 2026.
All research outputs
#1,732,516
of 32,683,094 outputs
Outputs from Nature
#43,570
of 114,878 outputs
Outputs of similar age
#10,056
of 295,576 outputs
Outputs of similar age from Nature
#419
of 918 outputs
Altmetric has tracked 32,683,094 research outputs across all sources so far. Compared to these this one has done particularly well and is in the 94th percentile: it's in the top 10% of all research outputs ever tracked by Altmetric.
So far Altmetric has tracked 114,878 research outputs from this source. They typically receive a lot more attention than average, with a mean Attention Score of 96.4. This one has gotten more attention than average, scoring higher than 62% of its peers.
Older research outputs will score higher simply because they've had more time to accumulate mentions. To account for age we can compare this Altmetric Attention Score to the 295,576 tracked outputs that were published within six weeks on either side of this one in any source. This one has done particularly well, scoring higher than 96% of its contemporaries.
We're also able to compare this research output to 918 others from the same source and published within six weeks on either side of this one. This one has gotten more attention than average, scoring higher than 54% of its contemporaries.