Monday, December 23, 2013

After the reported and actual sept outer space attempted currupt and potentially currupt breakdown and suspected violent evil first supervillain attack on a innocent and unsuspecting starship carrying formerally abused and holohydroaquaenslavement tortured hyperswimmer athletes and alliances. Just after this massive surprise unexpected attack and dangerous attack on the republic suddenly after a few battles in the omni omega and Vorta quadrants suddenly full scale conflict and war (clone wars/ taxonomic civil war) started to break out amongst the various areas in the omni omega and Vorta quadrants ; just after this the conflict spread to the outer outer outer inner and outer outer outer outer middle middle inner inner Omega and Vorta Quadrant even as far out as one googolplex, one teletrillion and zeptacillion and zoogolplex light years out !


Sep 27

After the reported and actual sept outer space attempted currupt and potentially currupt breakdown and suspected violent evil  first supervillain attack on a innocent and unsuspecting starship carrying formerally abused and holohydroaquaenslavement tortured hyperswimmer athletes and alliances.  Just after this massive surprise unexpected attack and dangerous attack on the republic suddenly after a few battles in the omni omega and Vorta quadrants suddenly full scale conflict and war (clone wars/ taxonomic civil war) started to break out amongst the various areas in the omni omega and Vorta quadrants ; just after this the conflict spread to the outer outer outer inner and outer outer outer outer middle middle inner inner Omega and Vorta Quadrant even as far out as one googolplex, one teletrillion and zeptacillion and zoogolplex light years out !

But then , after the aquirital and release of my future self and his eventual participation in the grand finale hyperswimming meet then the septs now resolved to the light side and now turned and converted to the republic the former septs agreed to send most info And data and records that they stole from the republic they finally after millions and bilions of years in gr jail they Helped to defeat the more powerful  tyrannicalscapetron , dominionalistiocalistalscapetron ,
Dominionalistiocalscapetron
And taxonomioscapetron X  X

Plasma Vortex league netowork alliance organization planets

Plasma Vortex

Saturday, December 21, 2013

Ancient founder forces of the republic / UCRC

Ancient founder forces of the republic / UCRC


Ancient founder forces of the republic / UCRC

ancient founder league alliance network forces of the republic/ UCRC

Ancient guiding forces of the republic

Ancient destiny forces of the republic

Ancient destiny forces of the republic / UCRC


Ancient destiny founder forces of the republic

Ancient accentant


How the republic emerged and reemerged to become the modern futuristic reformed once again golden and omnipotent galactic republic of the UCRC




The name for the unknown villainous super-villainous enemy that the republic has been fighting against is the Unknown Enemy or also known as the Unknown Adversary / has and will become known as the unknown adversarial enemy!

It was a super-villain. It was not a normal super-villain.  It was actually a maniacal, depressed, corrupted and wicked super villain.  It was a mastermind and corrupt and made wicked by a sinister, diabolical force.  This force was led by one person, called the Dominator King.  He was a fierce megalomaniac who was the most ugly, corrupted, twisted, scheming and evil.  The Dominator King was very unpopular to most species, clans, cultures, societies and civilizations because he took advantage of several separatist super-villain megalomaniacs and masterminds.  Underground corruption processes including underground megalomaniac and corruption movements lead processes and/or process-lead movements.  Therefore, he manipulated the general society, the public society, the underground, general society, the underground public society and the bareas societies and the hyper-swimming alliance. 

The Emperor King was a good, light-faced, more-or-less normal super-villain.  He was not actually as maniacal, sinister, creepy, or ugly as The Dominator King, but vanity and vice eventually overtook him.  He turned corrupt and turned to the dark side, which is the dark side of the Jedi force in Star Wars.  He raised the power and after he was defeated his son became more powerful than he was earlier.  His son was called The Dictator King.

The Dictator King


The Tyrant King


_____ = after the resolve of presidential galactic and galactic presidential senatorial agenical ambassadorial and diplomancy meeting bill/order/opposition/proposition/deleigation orders 1000 2000 3000 4000 5000 6000 7000 8000 9000 100 200 300 400 500 600 700 800 900 10 20 30 40 50 60 70 80 90 the changellers hadsidugararjmaiur and changellers palpatine had resolved the multiverse civil war clone wars and established a new stable order of security stability peace propersity and justice and law and civilizied presence of and influence of civilization/ futuristic civilization/nanotechnological level civilization quantum  manipulation level of civilization, virtual manipulation level of society/civilization holographic  manipulation level of civiliiztion gravity manipulation level of civilization and antigravity manipulation level of society and civilization and repuslierlift manipulation level of society and civilization throughout the republic



The name for the unknown villainous supervillainous enemy that the republic has been fighting against is the Unknown Enemy or also known as the Unknown Adversary / has and will become known as the unknown adversarial
enemy!









After deep lower level corescape and cyberinfostratoholohovercorescapemorphscape city and cyberinfostratohovercorescapemorphscape cyberinfostratocorescapemorphscape cyberinfocorescapemorphscape cyberinfocorescapemorphscape cybercorescapemorphscape cities are redeveloped the planning development and zoning is changed from a lower density parcel zone to a medium density parceel zone to a higher density parcil zone!


After deep lower level corescape and cyberinfostratoholohovercorescapemorphscape city and cyberinfostratohovercorescapemorphscape cyberinfostratocorescapemorphscape cyberinfocorescapemorphscape cyberinfocorescapemorphscape cybercorescapemorphscape cities are redeveloped the planning development and zoning is changed from a lower density parcel  zone to a medium density parceel zone to a higher density parcil zone!



The name for the unknown villainous supervillainous enemy that the republic has been fighting against is the Unknown Enemy or also known as the Unknown Adversary / has and will become known as the unknown adversarial enemy

The name for the unknown villainous supervillainous enemy that the republic has been fighting against is the Unknown Enemy or also known as the Unknown Adversary / has and will become known as the unknown adversarial enemy


The name for the unknown villainous supervillainous enemy that the republic has been fighting against is the Unknown Enemy or also known as the Unknown Adversary / has and will become known as the unknown adversarial
enemy!


Thursday, December 19, 2013

The history of the republic and UCRC republic from ancient times to modern times to far future and distant future times

Ancient founder forces of the republic / UCRC

ancient founder league alliance network forces of the republic/ UCRC

Ancient guiding forces of the republic

Ancient destiny forces of the republic

Ancient destiny forces of the republic / UCRC


Ancient destiny founder forces of the republic

Ancient accentant

The true age of the dsmsc republic is a few centuries and mellenia ahead of the MSDSA republic;

The true age of the dsmsc republic is a few centuries and mellenia ahead of the MSDSA republic; 

The true age of the dsmsc republic is a few centuries and mellenia 
ahead of the MSDSA republic;  the true age of the DSMSIC republic 
is a few to several to few, several and or several dozen
 centuries and mellenia more advanced
  than the MSDSA and the MSA republic ; 
the UDSMSIC republic is believed to be a few more several dozen
 and or a few several dozen centuries mellenia to 
ages and eons more advanced ; while the UHUR republic 
was a few several dozen hundred centuries mellenia 
AGES and EONS more advanced ; the UCRC republic
 was a few several dozen ( millions and billions of years old) 
 hundred centuries mellenia AGES and EONS literally 
up to googolplexes and teletrillions and 
zeptacillions and zoogolplexes 
and Meameamealokkapoowa Oompas of 
ages and eons old and more advanced

Sunday, December 15, 2013

Deep below and stretching below and beneath the tiniest possible deepest possible most lower level, most lowest level area repulierlift canyons are "deep below and stretching below and beneath the surface are big far- reaching , huge far reaching , immense   Far reaching and giantial and Collosal far reaching and deep immense far reaching below the surface of the planet Atimonia are deep deeper deepest deep deeply deep immense far reaching below the surface are repulierlift canyons known as 
Framegrid shield grid matrix network  (a upper middle lower [repulierlift canyons] canyons fused and or infused repulierlift canyon grid network " matrix "  barrier network to protect the repulierlifts from heavy snow, rain sleet or ice ESP dark matter ice or simply esp dark matter snow and ice ; a closed up closed away; closed down and closed over, closed thru and closed above Framegrid shield grid matrix barrier network repulierlift canyons going up down across and deep down deeply reaching and deep down deeply reaching deeper  
Framegrid shield grid matrix network  (a upper middle lower [repulierlift canyons] canyons fused and or infused repulierlift canyon grid network " matrix "  barrier network to protect the repulierlifts from heavy snow, rain sleet or ice ESP dark matter ice or simply esp dark matter snow and ice ; a closed up closed away; closed down and closed over, closed thru and closed above Framegrid shield grid matrix barrier network repulierlift canyons going up down across and deep down deeply reaching and deep down deeply reaching deeper  

Nanotechnology

CRN Task Force Scenarios

CRN Task Force Scenario Project

For the year 2007, the major project of the CRN Task Force was to begin producing a series of professional-quality scenarios of a near-future world in which exponential general-purpose molecular manufacturing becomes a reality. The purpose is to offer plausible, logical, understandable "stories" that illustrate the challenge of contending with the implications of advanced nanotechnology. What will that future look like? What can we learn from picturing it now that might help us avoid the worst pitfalls and generate the greatest benefits?



In pursuing this project, CRN pulled together more than 50 people from six continents, with a range of backgrounds and points of view, to collaborate on the CTF Scenario Development Project. Most of the participants were members of the CRN Task Force, but some were not (see the full list here). Over the course of several months, we conducted a unique series of "virtual workshops," using a combination of teleconferencing, Internet chat, and online shared documents, and developed eight very different scenarios. We look forward to your feedback as you read and think about these possible futures. 
 
Introduction to the Series

Scenario 1:  Secret Military Development

Scenario 2:  Positive Expectations

Scenario 3:  Negative Drivers

Scenario 4:  Presidential Commission

Scenario 5:  ... And Not a Drop to Drink

Scenario 6:  A Goal Postponed

Scenario 7:  Newshound Notebook

Scenario 8:  Breaking the Fever

STANFORD SCIENTISTS PUBLISH THEORY, FORMULA TO IMPROVE ‘PLASTIC’ SEMICONDUCTORS


Understanding how the molecular structure of polymers influences their electrical characteristics could hasten the advent of flexible electronics.

Tom Abate | School of Engineering
Anyone who’s stuffed a smart phone in their back pocket would appreciate the convenience of electronic devices that could bend. Flexible electronics could spawn new products: clothing wired to cool or heat, reading tablets that could fold like newspaper, and so on.

Alas, electronic components such as chips, displays and wires are generally made from metals and inorganic semiconductors -- materials with physical properties that make them fairly stiff and brittle.

In the quest for flexibility many researchers have been experimenting with semiconductors made from plastics or, more accurately polymers, which bend and stretch readily enough.

“But at the molecular level polymers look like a bowl of spaghetti,” says Stanford chemical engineering professor Andrew Spakowitz, adding: “Those non-uniform structures have important implications for the conductive properties of polymeric semiconductors.”



Stanford Professor Andrew Spakowitz has studied how the molecular structures that make polymers flexible also affect their usefulness as semiconductors. The research will help make bendable electronic devices possible. (Tom Abate, Stanford University)

Spakowitz and two colleagues, Rodrigo Noriega, a postdoctoral researcher at UC Berkeley, and Alberto Salleo, a Stanford professor of Materials Science and Engineering, have created the first theoretical framework that includes this molecular-level structural inhomogeneity, seeking to understand, predict and improve the conductivity of semiconducting polymers.

Their theory, published today in the Proceedings of the National Academy of Sciences, deals with the observed tendency of polymeric semiconductors to conduct electricity at differing rates in different parts of the material – a variability that, as the Stanford paper explains, turns out to depend on whether the polymer strands are coiled up like a bowl of spaghetti or run relatively true, even if curved, like lanes on a highway.

In other words, the entangled structure that allows plastics and other polymers to bend also impedes their ability to conduct electricity, whereas the regular structure that makes silicon semiconductors such great electrical switches tends to make it a bad fit for our back pockets.

The Stanford paper in PNAS gives experimental researchers a model that allows them to understand the tradeoff between the flexibility and conductivity of polymeric semiconductors.

Grasping how they created their model requires a basic understanding of polymers. The word “polymer” is derived from the Greek for “many parts” which aptly describes their simple molecular structure, which consists of identical units, called monomers, that string together, end to end, like so many sausages. Humans have long used natural polymers such as silk and wool, while newer industrial processes have adapted this same technique to turn end-to-end chains of hydrocarbon molecules, ultimately derived from petroleum byproducts, into plastics.

But it was only in the late 1970s that a trio of scientists discovered that plastics which, until then were considered non-conductive materials suitable to wrap around wires for insulation could, under certain circumstances, be induced to conduct electricity.

The three scientists, Alan Heeger, Alan MacDiarmid and Hideki Shirakawa, shared the Nobel Prize in Chemistry in 2000 for their co-discovery of polymeric semiconductors. In recent years, with increasing urgency, researchers have been trying to harness the finicky electrical properties of plastics with an eye toward fashioning electronics that will bend without breaking.

In the process of experimenting with polymeric semiconductors, however, researchers discovered that these flexible materials exhibited “anomalous transport behavior” or, simply put, variability in the speed at which electrons flowed through the system.

One of the fundamental insights of the Stanford paper is that electron flow through polymers is affected by their spaghetti-like structure – a structure that is far less uniform than that of the various forms of silicon and other inorganic semiconductors whose electrical properties are much better understood.

“Prior theories of electrical flow in polymeric semiconductors are largely extrapolated from our understanding of metals and inorganic semiconductors like silicon,” Spakowitz said, adding that he and his collaborators began by taking a molecular-level view of the electron transport issue.

In essence, the variability of electron flow through polymeric semiconductors owes to the way the structure of these molecular chains creates fast paths and congestion points (refer to diagram). In a stylized sense imagine that a polymer chain runs relatively straight before coming to a hairpin turn to form a U-shape. An electric field moves electrons rapidly up to the hairpin, only to stall.



The yellow electric charge races through a 'speed-lane' in this stylized view of a polymer semiconductor, but pauses before leaping to the next fast path. Stanford engineers are studying why this occurs with an eye toward building flexible electronics. (Professor Andrew Spakowitz)

Meanwhile imagine a similar U-shape polymer separated from the first by a tiny gap. Eventually, the electrons will jump that gap to go from the first fast path to the opposing fast path. One way to think about this is a traffic analogy, in which the electrons must wait for a traffic light to cross from one street, though the gap, before proceeding down the next.

Most importantly, perhaps, in terms of putting this knowledge to use, the Stanford theory includes a simple algorithm that begins to suggest how to control the process for making polymers – and devices out of the resulting materials - with an eye toward improving their electronic properties.

“There are many, many types of monomers and many variables in the process,” Spakowitz said. The model presented by the Stanford team simplifies this problem greatly by reducing it to a small number of variables describing the structural and electronic properties of semiconducting polymers. This simplicity does not preclude its predictive value; in fact, it makes it possible to evaluate the main aspects describing the physics of charge transport in these systems.

“A simple theory that works is a good start,” said Spakowitz, who envisions much work ahead to bring bending smart phones and folding e-readers to reality.

Media Contact:

Tom Abate, Associate Director of Communications, Stanford Engineering, 650-736-2245tabate@stanford.edu

 

Describing the electric dark sector

Not only this but these set of photos show new hypothetical laws of somehow intertwined scalar / spatial scalar/ electric spatial scalar/ an...