Mixed path: Difference between revisions

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* [[Mechanosynelf assembly]]
* [[Mechanosynelf assembly]]
* [[Mechanosynelf assembly assemblinting system]]
* [[Mechanosynelf assembly assemblinting system]]
* [[Thether assisted positiinal assembly]]
* [[Tether assisted positional assembly]]
2D positiinal walkers on vesicle membranes or someting. <br>
2D positiinal walkers on vesicle membranes or someting. <br>
Questiinable if this can be fast enough <br>
Questiinable if this can be fast enough <br>

Latest revision as of 08:28, 27 July 2026

Very crude conceptual example of part of an MMCN. Red may represent proteins, Blue dots may represent binding sites/active sites. Dark grey blocks and grid of black may represent bigger structures (maybe structural DNA nanotechnology). Yellow way represent a gold contact on a chip for electrostatic interaction. White outline: A hinge. ... Moe details on page: Modular molecular composite nanosystem.
Conceptual sketch illustrating the idea of an "early diamondoid nanosystem pixel" or "early replicative pixel" for short. More details on page: Early diamondoid nanosystem pixel (direct path).

This "mixed path" is about a scenario wherein the incremental path and the direct path eventually at some point intermingle
thereby "cross-pollinating" which then helps along accelerating on the pathway to advanced productive nanosystems.

Mixed technology along the pathway, not necessarily mixed in the target technology

Note that taking this pathway does not mean that all far term target systems will be hybrid.
Taking this pathway rather means that there will be more options for bio-compatible operation in advanced systems (nanomedicine).
High performance systems (like e.g. in rocket engines or so) will still need to avoid all thermally fragile components.
Meaning likely no foldamers but only crystolecules. See: Consistent design for external limiting factors

Hard in soft – crystolecules in foldamer systems

  • Integration of solution phase mechanosynthesis in foldamer systems
  • Integration of crystolecules (possibly produced in vacuum) into solution phase systems

Combining strengths & compensating for weaknesses

This option may be especially likely as it
combines the different pathway approaches in a way that
combines their strengths and compensates for their weaknesses.

Combining strengths:
Incremental paths strength at scaling to larger system complexities (incremental).
Direct paths strength at introduction of total positional control towards positional atomic precision.

Compensating for weaknesses:
Incremental paths challenge at introduction of total positional control towards positional atomic precision
Direct paths challenge at scaling to larger system complexities (direct).

Soft in hard – foldamers in crystolecule systems

Integration of self assembled foldamer things into crystolecular systems.

Integration of optically active molecules

Expanding on the range of what colorcenters in crystals can do.
Caveat: Molecules are more susceptible to irreversible light damage (aka bleaching)

Spiroligimers in UHV

While spiroligimers are not exactly soft
they are usually counted to the incremental path side.

Using symmetrizng assemblies of several spiroligimers.
Unlike mist larger molecules they can meet
the tight constraints to become recognizably imageable by qPlus nc-AFM.

Symmetric assemblies may be viable as tools for SPM work in UHV.

All thiis may not find much focus due to the usual quwstions …

Termination controlled graphene nanirbbons (GNRs)

These are actually already a (if not the) prime focus of qPlus nc-AFM imaging.
Usually lacking termination contol in length though.
Try a web image seach and be amazed.
Also: https://en.wikipedia.org/wiki/Graphene_nanoribbon

GNRs perfectly fulfill the tight constraints to be imageable by qPlus nc-AFM
which seems to be a major reason that there is so much focus on them.

Delineation to synthetic biology

It is not impossible but it seems rather unlikely that
synthetic biology can provide much targeted R&D towards advanced gemstone based APM.
The reason:

Synthetic biology, when interpreted as what it says in its name,
has as far term target "mimicking what biology does in synthetic ways"
and that would be artificial vesicular systems.
Vesicular means by soft membrane-bound compartments in cells
that have complex chemical intercommunication
that makes heavy use of diffusion transport.

This is a almost diametrically opposed far term target to
APM where the goal is to go to stiffer less diffusion dependent systems ASAP.
As is mentioned on the Main page of this wiki.

Running with the premise anyway

Maybe there is a way to get some weird crystal focused synthetic biology
that aims at usage of such vesicular diffusion systems for the assembly of
larger scale topologically atomically precise foldamer assemblies
with proper termination control).
But the author is not aware of such a field or dedicated efforts as of 2026.

The intersection here could incude:

2D positiinal walkers on vesicle membranes or someting.
Questiinable if this can be fast enough
And if similar but on a chip would not work better.


synthetic biology including it's far term targets are …

Thus thus wiki will for the most part not count it to the field of a atomically precise manufacturing
particularly not for the far the target of gemstone metamaterial technology.

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