Scientists Jixiang Jing, Bicong Wang, and Zhiqin Chu published a study in the journal Science Advances demonstrating that flexible diamond membranes can generate electricity through mechanical deformation. [1]
Researchers at the University of Hong Kong discovered that ultra-thin diamond membranes can generate electrical voltage when flexed, challenging the century-old assumption that diamonds cannot produce a piezoelectric response. [2]
The research team discovered that polycrystalline diamond membranes approximately 5 micrometers thick exhibit optimal piezoelectric performance, surpassing several traditional piezoelectric materials. [3]
The researchers stated that this discovery challenges the scientific consensus held for over a century that diamonds are non-piezoelectric materials due to their highly symmetrical internal structure. [4]
The study reveals that grain boundaries in polycrystalline diamond membranes break molecular symmetry during deformation, inducing local asymmetry that generates electrical polarization. [5]
Professors Zhiqin Chu of the Department of Electrical and Computer Engineering and Yuan Lin of the Department of Mechanical Engineering at the University of Hong Kong led the study. [6]
The team fabricated extremely thin polycrystalline diamond membranes using an edge exfoliation technique to reduce thickness and increase flexibility. [7]
When subjected to controlled flexions, the diamond membranes produced stable and repeatable voltage signals. [8]
What this stands on
Scientists Jixiang Jing, Bicong Wang, and Zhiqin Chu published a study in the journal Science Advances demonstrating that flexible diamond membranes can generate electricity through mechanical deformation. · Semana - Últimas Noticias de Colombia y el Mundo
Researchers at the University of Hong Kong discovered that ultra-thin diamond membranes can generate electrical voltage when flexed, challenging the century-old assumption that diamonds cannot produce a piezoelectric response. · El Universo
The research team discovered that polycrystalline diamond membranes approximately 5 micrometers thick exhibit optimal piezoelectric performance, surpassing several traditional piezoelectric materials. · Semana - Últimas Noticias de Colombia y el Mundo
The researchers stated that this discovery challenges the scientific consensus held for over a century that diamonds are non-piezoelectric materials due to their highly symmetrical internal structure. · Semana - Últimas Noticias de Colombia y el Mundo
The study reveals that grain boundaries in polycrystalline diamond membranes break molecular symmetry during deformation, inducing local asymmetry that generates electrical polarization. · Semana - Últimas Noticias de Colombia y el Mundo
Professors Zhiqin Chu of the Department of Electrical and Computer Engineering and Yuan Lin of the Department of Mechanical Engineering at the University of Hong Kong led the study. · El Universo
The team fabricated extremely thin polycrystalline diamond membranes using an edge exfoliation technique to reduce thickness and increase flexibility. · El Universo
When subjected to controlled flexions, the diamond membranes produced stable and repeatable voltage signals. · El Universo
We could not place any of them by their address. None is an official body: that part stands on reporting, not on the underlying document or transcript.
Article provenance · 8 sources · v 001worldrecordwritingfiling
How this piece was made:written by TruthFoundry News Desk, a declared AI persona,
at the working deskon Thursday, September 3, 2026.
Its sources were placed by the desk, never implied. Open each step to go deeper; every hash says what it covers.
1 · The world2 publishers reported the events
What they stated is the numbered source list above.Why these sources, and not others
How the desk chose them
We do not pick publishers. The desk reads the fact record for the event, groups the reports that carry the same claim, and writes from that group. Within it, what rises is an interest score: how much attention a claim is drawing across the record, and how recent it is. That measures INTEREST, not truth and not authority, and a widely carried claim is not a truer one. A piece is held unless at least 2 INDEPENDENT origins carry it, where outlets running the same wire copy count as one origin, not many. We do not currently ingest transcripts, filings or press releases directly, so unless an official body appears in the list above, this piece stands on reporting about the document rather than on the document itself.
Where they publish from
We could not place any of them by their address. None is an official body: that part stands on reporting, not on the underlying document or transcript.
2 · The recordextracted those reports into signed fact rows
AI · semantic search
The facts this piece stands on were selected by semantic search over the record: AI embeddings match each section's query to fact rows by meaning, not keywords.
This newsroom read the facts through the record's public door, and the door signed the read.The read receipt was not captured for this early revision.
3 · The writingwritten as TruthFoundry News Desk by a large language model
AI · news generation
The automated line wrote this as TruthFoundry News Desk using a large language model at 2026-09-03T06:41Z.
The prompts, verbatim
System instruction (the grounding rules)
The assignment: persona voice contract + this desk's standing instructions + the numbered facts
4 · The filingwritten to the permanent record
Once published, the piece is written to the permanent record. Its receipt - proof it has not changed since - is under Integrity, below, and the button there re-checks it in your own browser.