The Fort Worth Press - China’s lithography leap

USD -
AED 3.672497
AFN 63.496236
ALL 80.15939
AMD 362.919823
ANG 1.790365
AOA 916.999719
ARS 1514.244199
AUD 1.414917
AWG 1.80125
AZN 1.691204
BAM 1.712962
BBD 2.013821
BDT 122.932477
BGN 1.683441
BHD 0.376962
BIF 3004.585047
BMD 1
BND 1.277595
BOB 11.923749
BRL 5.131303
BSD 0.99986
BTN 95.678145
BWP 13.595481
BYN 3.027431
BYR 19600
BZD 2.01093
CAD 1.40891
CDF 2311.000026
CHF 0.82285
CLF 0.024072
CLP 950.520259
CNY 6.6998
CNH 6.70685
COP 3210.07
CRC 453.685538
CUC 1
CUP 26.5
CVE 96.574587
CZK 21.3671
DJF 178.050457
DKK 6.551265
DOP 59.478089
DZD 133.645601
EGP 51.398897
ERN 15
ETB 163.319699
EUR 0.87636
FJD 2.237199
FKP 0.750528
GBP 0.75325
GEL 2.595013
GGP 0.750528
GHS 11.583045
GIP 0.750528
GMD 73.505167
GNF 8793.441704
GTQ 7.63211
GYD 209.186734
HKD 7.843325
HNL 26.837396
HRK 6.603201
HTG 130.683635
HUF 319.267505
IDR 17825
ILS 3.01575
IMP 0.750528
INR 95.73935
IQD 1309.814191
IRR 1374650.000003
ISK 120.929585
JEP 0.750528
JMD 157.538176
JOD 0.708982
JPY 157.929498
KES 129.310285
KGS 87.449804
KHR 4054.823313
KMF 429.999861
KPW 900.000318
KRW 1365.049996
KWD 0.30907
KYD 0.833209
KZT 444.620586
LAK 22404.007848
LBP 89537.860574
LKR 328.955608
LRD 172.465735
LSL 16.310417
LTL 2.95274
LVL 0.60489
LYD 6.383128
MAD 9.57123
MDL 17.695844
MGA 4393.217489
MKD 53.88149
MMK 2099.577364
MNT 3597.923561
MOP 8.077068
MRU 40.034859
MUR 47.880241
MVR 15.460197
MWK 1733.73447
MXN 17.439766
MYR 4.079696
MZN 63.88613
NAD 16.310274
NGN 1324.480236
NIO 36.793911
NOK 9.464115
NPR 153.084711
NZD 1.75705
OMR 0.384501
PAB 0.99986
PEN 3.375476
PGK 4.454546
PHP 62.558506
PKR 277.084952
PLN 3.83586
PYG 5925.912951
QAR 3.645178
RON 4.625896
RSD 102.932975
RUB 84.352215
RWF 1475.675439
SAR 3.756768
SBD 8.026013
SCR 13.74007
SDG 601.513532
SEK 9.87837
SGD 1.278335
SHP 0.74758
SLE 24.649746
SLL 20969.491881
SOS 571.398543
SRD 37.740486
STD 20697.981008
STN 21.4581
SVC 8.748774
SYP 13002.000254
SZL 16.306476
THB 33.287502
TJS 9.253737
TMT 3.5
TND 2.95341
TOP 2.40776
TRY 48.826011
TTD 6.795649
TWD 31.670374
TZS 2645.002947
UAH 44.878367
UGX 3889.609025
UYU 40.078651
UZS 11798.503182
VES 851.341303
VND 26010.5
VUV 118.348377
WST 2.752527
XAF 574.854365
XAG 0.015348
XAU 0.000232
XCD 2.70255
XCG 1.801955
XDR 0.707052
XOF 574.854365
XPF 104.452317
YER 236.550089
ZAR 16.34619
ZMK 9001.202171
ZMW 19.472654
ZWL 321.999592
SSP 5712.590503
MXV 1.976583
  • RIO

    -0.3300

    97.04

    -0.34%

  • CMSC

    -0.0400

    20.67

    -0.19%

  • RELX

    0.0000

    33.41

    0%

  • RBGPF

    0.0000

    67.95

    0%

  • BCE

    -0.0700

    21.99

    -0.32%

  • BCC

    -0.0300

    75.66

    -0.04%

  • GSK

    0.8600

    51.08

    +1.68%

  • JRI

    -0.0300

    11.52

    -0.26%

  • NGG

    -0.1200

    76.68

    -0.16%

  • CMSD

    0.0900

    20.54

    +0.44%

  • BTI

    -0.0800

    55.75

    -0.14%

  • AZN

    2.0200

    168.1

    +1.2%

  • BP

    -1.4200

    43.16

    -3.29%

  • RYCEF

    0.4600

    19.7

    +2.34%

  • VOD

    0.0700

    17.02

    +0.41%


China’s lithography leap




China has crossed a threshold in the semiconductor contest that many Western policymakers had hoped would remain out of reach for considerably longer. A state-backed manufacturer in Shanghai has begun producing domestically developed immersion deep-ultraviolet lithography systems, with the first machines intended for some of the country’s most important chipmakers.

The development does not mean that China has suddenly reproduced ASML’s most advanced technology. It has not broken the Dutch company’s monopoly on commercially proven extreme-ultraviolet lithography, nor has it demonstrated that its new machines can yet deliver the productivity, precision and reliability demanded by a modern high-volume fabrication plant.

What has changed is nevertheless important. China’s domestic lithography campaign is no longer confined to research projects, politically convenient announcements or laboratory prototypes. It has entered an initial industrial phase, supported by a manufacturer, state capital, specialist engineering teams and customers prepared to test the equipment under real production conditions.

A breakthrough that must be described precisely
Shanghai Aishengna Electronic Technology Group is leading the effort to manufacture China’s first home-grown immersion DUV systems. The current production plan envisages approximately five machines during 2026 and roughly twenty more in 2027. Initial deliveries are expected to go to Semiconductor Manufacturing International Corporation, Hua Hong Semiconductor and memory producer ChangXin Memory Technologies.

Those numbers immediately reveal both the significance and the limitations of the development. ASML shipped 131 immersion DUV systems in 2025 and has prepared annual production capacity of approximately 130 systems for 2026. China is therefore not about to displace the Dutch group by volume. The Chinese systems also require extensive qualification. They are not believed to match ASML’s current machines in performance, availability or long-term reliability. No independently verifiable data have yet been published for the most important commercial measurements, including wafer throughput, overlay precision, defect rates and sustained operating time.

The expression mass production must consequently be treated with caution. In this instance, it describes the transition from a single prototype towards a small repeatable manufacturing series. It does not yet demonstrate that the machines are ready to operate continuously in an advanced fabrication plant while producing commercially acceptable yields.
Even so, the transition matters. A technology programme that can produce five imperfect machines is fundamentally different from one that can produce none.

Why DUV remains strategically decisive
Immersion DUV lithography is sometimes described as yesterday’s technology because ASML’s most advanced customers are now expanding their use of EUV and High-NA EUV systems. That description is misleading. DUV machines remain essential throughout the semiconductor industry. They use light with a wavelength of 193 nanometres and place a thin layer of water between the projection optics and the silicon wafer. The water increases the effective numerical aperture of the optical system, allowing finer circuit patterns to be printed than would be possible with a conventional dry scanner.

Not every layer of an advanced processor requires EUV. DUV machines continue to produce numerous layers in leading-edge chips and are indispensable for mature logic, memory, analogue, automotive, communications and power semiconductors. These categories represent an enormous industrial market, even when they receive less attention than the smallest processors used in artificial intelligence systems. DUV can also be pushed beyond the resolution achieved in a single exposure. Through multiple patterning, a chipmaker divides one complex pattern into several simpler patterns and exposes the wafer repeatedly. This technique can extend DUV production towards considerably smaller process nodes.

The price is complexity. Each additional exposure introduces another opportunity for alignment errors, contamination and yield loss. More masks, more processing steps and more time are required. Production becomes slower and more expensive, while precise overlay between successive patterns becomes increasingly difficult.

A Chinese immersion DUV machine would therefore not automatically place the country at the technological frontier. It could, however, secure equipment for a large proportion of China’s semiconductor output and preserve a domestic route towards more advanced chips when foreign machines are unavailable.

China is building an industrial coalition
Aishengna was established in 2023 with registered capital of seven billion yuan and the backing of state-controlled investors. The company has incorporated engineering teams associated with Shanghai Yuliangsheng Technology and Shanghai Micro Electronics Equipment, bringing together expertise that had previously been dispersed across several Chinese lithography initiatives.

Yuliangsheng has close links to the wider equipment network surrounding SiCarrier, which itself has been closely associated with Huawei’s campaign to create a domestic semiconductor supply chain. The structure illustrates how China is approaching the problem. Instead of relying on one company to develop every technology independently, it is combining state finance, municipal support, engineering talent, fabrication plants and equipment manufacturers.
The expected customers are equally important. SMIC, Hua Hong and CXMT are not merely buyers waiting for a finished commercial product. They can provide the production environment in which the machines are tested, calibrated and improved.

A lithography system placed inside a major fabrication plant begins generating the data needed for industrial learning. Engineers can identify stability problems, improve alignment, modify software, strengthen components and adjust process recipes. Each wafer becomes part of the development programme.

This relationship gives the Chinese initiative an advantage that a conventional start-up would not possess. Its first customers have strategic reasons to tolerate delays, lower throughput and higher initial costs. They are likely to participate in the development process because the alternative is continued dependence on equipment whose delivery or servicing may be restricted at any time.

ASML’s real advantage is larger than the machine
ASML’s dominance cannot be explained by the wavelength of its light source alone. A modern scanner is an exceptionally complicated production platform in which optics, lasers, wafer stages, vibration control, thermal management, metrology, computational lithography and software must operate as one system.
The machine must position a wafer with extraordinary precision, expose successive layers, compensate for microscopic distortions and repeat the process hundreds of times without losing calibration. It must perform these tasks at industrial speed and remain available for continuous production.

A scanner that produces one successful pattern in a controlled test is therefore not necessarily commercially useful. A fabrication plant needs repeatability across millions of exposures. A small overlay deviation may render an entire layer defective. An unreliable component may interrupt a production line whose unfinished wafers are worth millions. ASML has spent decades refining these capabilities with leading chipmakers and a specialised international supplier network. It also possesses an enormous installed base, extensive field-service operations and process knowledge accumulated across successive generations of machines.

That is the central reason why the Chinese systems do not present an immediate commercial threat. China may have succeeded in assembling a domestic immersion platform, but it has yet to demonstrate the operating discipline that transformed ASML’s machines into the industry standard.

The catch is industrial reliability
The most difficult stage begins after the first machine leaves the factory. China must prove that its domestic scanners can maintain overlay accuracy over long production runs, achieve acceptable throughput, survive constant operation and deliver similar results from one machine to another. It must also establish a reliable supply of spare parts, trained service engineers, qualified materials and compatible processing equipment.

Some critical components are still believed to depend on foreign suppliers. Even where most of the machine is domestically produced, one imported laser component, precision sensor or optical element may create a new vulnerability. China may have reduced its dependence without eliminating it. Lower productivity can initially be absorbed through state support. A Chinese fabrication plant may accept a higher cost per wafer because the strategic value of domestic equipment exceeds the immediate commercial loss. Additional machines can compensate for poor throughput, while subsidies can offset lower yields.

That approach has limits. Advanced processors contain large dies and costly materials. Poor yield rapidly becomes prohibitive. A machine that is politically valuable but industrially unstable cannot support China’s long-term demand for artificial intelligence accelerators, advanced memory and premium smartphone processors.
The first systems will consequently be judged less by the smallest line they can print than by their behaviour after thousands of wafers.

The EUV wall has not fallen
China’s progress with immersion DUV must also be separated from its far more difficult effort to develop EUV lithography. A prototype constructed in a secure facility in Shenzhen has reportedly succeeded in generating extreme-ultraviolet light. That is a meaningful technical achievement, but the system has not yet produced working chips. Generating EUV light is only one element of a complete scanner.

EUV operates at a wavelength of 13.5 nanometres. The light is absorbed by almost every material, meaning that the exposure process must take place in a vacuum and use highly specialised reflective optics rather than conventional lenses. The system must control contamination, maintain mirror quality, position the wafer, manage heat and compensate for minute optical distortions. Masks, photoresists, metrology equipment and computational corrections must also function as part of the same process. A weakness in any one of these areas can prevent the machine from producing usable wafers.

ASML, meanwhile, is not standing still. It is expanding production of its established EUV systems while introducing High-NA technology for future logic processes below two nanometres and advanced memory production. The company is preparing to increase its low-NA EUV capacity significantly during 2027 and is already examining another expansion for 2028.
China may therefore narrow the gap in one generation of equipment while the technological frontier moves forward again. The catch is not merely whether China can build an EUV prototype. It must convert that prototype into a compact, stable, serviceable and economically viable production system. That remains a vastly more demanding task.

Export controls have changed the economics
Restrictions imposed by the United States and the Netherlands have prevented Chinese customers from acquiring ASML’s EUV systems and have progressively limited access to the most advanced immersion DUV models. These measures have slowed China’s technological progress, increased production costs and forced chipmakers to rely on older machines and more complicated manufacturing techniques.

They have also produced an unintended consequence. Domestic lithography now has a guaranteed strategic market. A Chinese machine does not need to outperform ASML in every category to become attractive. It needs to be sufficiently capable at a moment when the foreign alternative cannot be purchased, upgraded or trusted to remain serviceable. For a Chinese fabrication plant, technological sovereignty has acquired an economic value of its own. A less productive domestic machine may still be preferable to a superior foreign system that could become unusable following a regulatory decision abroad.

This creates a fundamental policy paradox. Export controls can buy time and deny access to the newest technology, but the same controls strengthen the commercial case for developing substitutes. The more uncertain foreign supply becomes, the more money, talent and political attention China is prepared to direct towards local equipment.
Restrictions can delay technological convergence. They cannot guarantee permanent dependence.

ASML is not facing an immediate crisis
The alarm surrounding China’s announcement should not obscure ASML’s present strength. The company generated second-quarter sales of €9.3 billion in 2026 and net income of €2.9 billion. It subsequently raised its full-year sales forecast to between €43 billion and €45 billion, with an expected gross margin of between 54 and 56 per cent.
Demand for advanced logic and memory equipment continues to be driven by investment in artificial intelligence infrastructure. ASML is expanding its production capacity, has strong customer commitments and retains the only commercially proven EUV platform used in high-volume manufacturing.

A handful of Chinese immersion machines cannot materially alter that position in the near term. ASML’s installed base, service revenue, software, customer relationships and technological lead remain formidable. The strategic risk lies further ahead. China has been an important market for ASML’s DUV business. If domestic machines improve, Chinese customers may gradually replace foreign equipment in mature and intermediate processes, even where the local alternative remains less efficient.

ASML could therefore lose part of its Chinese market without being technologically defeated. Procurement rules, servicing concerns and national industrial policy may prove as influential as technical performance. A monopoly begins to weaken not only when a competitor reaches parity, but when customers decide that dependence itself has become unacceptable.

A turning point, not a takeover
China has achieved something once regarded as improbable: it has created a credible path towards domestically manufactured immersion DUV lithography systems and begun building them for major customers. That achievement must not be confused with equality. The initial output is small. The machines are not yet proven in high-volume manufacturing. Their performance remains below ASML’s standards, and the much more difficult EUV challenge is unresolved.

Nevertheless, the programme now possesses a manufacturer, state finance, engineering teams, customers and a production timetable. It is no longer theoretical. That is the real source of concern for ASML. The nightmare is not that China has already reproduced everything the Dutch company can build. It is that a process of industrial learning has begun in a market large enough, wealthy enough and politically determined enough to sustain years of costly experimentation.

ASML remains far ahead. But the assumption that China must remain permanently dependent on imported lithography technology is no longer secure.