Reach of 400G and 800G coherent modules: a comparison for typical carrier routes

Why the range of a coherent module is a variable, not a constant


A classic SFP+ module has a fixed range of 10 km or 40 km. You buy a module for a specific distance, and that’s it. A coherent module works differently because the same hardware supports multiple modulation modes, each representing a different trade-off between throughput and range.
One module, three modes, three different reaches
16QAM
4 bits per symbol
up to 120 kmfull 400G
8QAM
3 bits per symbol
up to 600 km300G
QPSK
2 bits per symbol
over 1000 km200G

The more bits per symbol, the higher the information density, but the symbols sit closer together and noise causes errors sooner. QPSK has the largest OSNR margin, so it tolerates signal degradation across repeated passes through ROADM nodes and EDFA amplifiers.

The modulation mode determines how many bits are encoded in a single optical symbol. 16QAM encodes four bits per symbol, providing maximum information density, but the symbols are close together, and noise causes errors over long distances. QPSK encodes two bits per symbol; the symbols are far apart, so the signal tolerates much greater degradation and travels much further. 8QAM sits in between. A network designer selects the modulation mode for a route just as an engineer chooses a speed for a road: maximum speed on a straight highway, but safety over speed on a mountain pass.

400G modules, ranges by mode

GBC Photonics QSFP-DD 400G OpenZR+ modules operate in three primary modulation modes, each corresponding to a different type of route in a real-world operator network.
Baseline mode, OIF 400ZR
400G
DP-16QAM
up to 120 km
Throughputfull 400G per port
Requirementsgood OSNR, a path without excess passive components
Use casemetro DCI, city networks, sites within 100 km
Regional and backbone routes
300G
DP-8QAM
up to 600 km
Throughput75 percent, with a far higher OSNR margin
In practice300 to 500 km on routes with intermediate nodes
Use casebackbone in Poland, links to CEE countries
Maximum reach
200G
DP-QPSK
over 1000 km
Throughputhalf, but the largest OSNR margin
Resilienceto repeated passes through ROADM and EDFA
Use caseinternational routes, backup for critical links

400G DP-16QAM mode, OIF 400ZR standard

Maximum throughput with a range of up to 120 km. This mode is designed for DCI connections between data centers in the same city or between cities separated by several dozen kilometers. It requires good OSNR and a path without an excessive number of passive elements. For routes under 80 km using high-quality G.652.D fiber, it is the optimal choice; beyond 80 km, the result depends on the number of ROADM nodes and path quality, which is why we always calculate the optical budget before deployment. Typical applications include connections between data center nodes in Warsaw, Krakow, or Wroclaw, metro networks handling urban and suburban traffic, and DCI between an organization's facilities within a 100 km radius.

300G DP-8QAM mode

Three-quarters of the throughput with a range of up to 600 km under good path conditions, or realistically 300 to 500 km for routes with intermediate nodes. 8QAM provides a significantly higher OSNR margin than 16QAM while maintaining 75 percent of the throughput. For regional routes where 16QAM falls short and 100G is not enough, 8QAM is the right answer. In production tests on the Poznan-Frankfurt route—nearly 1,000 km on a Polish backbone operator's infrastructure—GBC Photonics 400G modules achieved stable 300G transmission in 8QAM mode, directly from the router, without external transponders. Applications include backbone routes between major nodes in Poland, connections to neighboring CEE countries, and regional networks serving multiple provinces.

200G DP-QPSK mode

Half the throughput with a range exceeding 1,000 km under favorable path conditions. QPSK has the highest OSNR margin among standard coherent modulation modes, which translates into resistance to signal degradation when passing through multiple ROADM nodes and EDFA amplifiers. Applications include international connections, routes with many intermediate nodes, and securing critical backbone links where reliability is more important than throughput.

800G modules with PCS, ranges by mode

The GBC Photonics QSFP-DD 800G OpenZR+ module with PCS (Probabilistic Constellation Shaping) represents the next generation. PCS allows for smooth adjustment of the effective modulation mode between standard values, so instead of jumping between QPSK and 8QAM, the module moves along the entire scale.
GBC Photonics 800G OpenZR+ with PCS

Probabilistic Constellation Shaping allows the effective modulation mode to be tuned continuously. Instead of jumping between QPSK and 8QAM, the module moves along the whole scale and optimises the trade-off between throughput and reach by itself, based on measured OSNR.

800G
DP-16QAM
80 to 120 km

Maximum throughput density per port. DCI within the same metropolitan area, campus-to-campus links, data centres with high GPU density.

600G
DP-8QAM
300 to 500 km

Three quarters of 800G throughput. Regional routes with modern ROADM nodes and city-to-city links where 400G is no longer enough.

400G and below
adaptive PCS modes
a smooth curve

Continuous optimisation with no hard threshold between modes. For routes that need 400G today on infrastructure you are designing for 800G tomorrow.

The 800G DP-16QAM mode provides maximum throughput for short links and DCI, with a range of 80 to 120 km given good OSNR. This mode is for connections between nearby locations where the priority is maximum throughput density per port, such as DCI within the same metropolitan area, campus connections within a few dozen kilometers, and high-density GPU data centers.

The 600G DP-8QAM mode provides three-quarters of 800G throughput with a range of 300 to 500 km. Thanks to PCS, the module automatically optimizes the trade-off between throughput and range based on measured OSNR, adapting smoothly to path conditions. This is a solution for regional routes with modern ROADM nodes and connections between large cities where the required throughput exceeds the capabilities of 400G.

For longer routes, an 800G module with PCS can operate at 400G throughput or lower, maintaining a significantly higher range than in 800G mode. The flexibility of PCS allows for continuous optimization without hard thresholds between modes, as you have a smooth curve of range versus throughput instead of a step-by-step choice between predefined options. This is the choice for backbone routes where you need 400G today, but are designing the infrastructure for future expansion to 800G without replacing modules.

The impact of path quality on real-world range

The stated ranges are values under standard path conditions. In practice, two factors most often reduce the real-world range below nominal values.
The number of ROADM nodes

Every reconfigurable optical add-drop multiplexer introduces signal loss. A 500 km route with five ROADM nodes has a completely different effective optical budget than the same route point to point.

On networks with many intermediate nodes, the reach of higher modulation modes drops.
That is exactly when 8QAM or QPSK becomes the right choice.
Fibre quality and the number of splices

Catalogue attenuation for new G.652.D fibre in the C-band is roughly 0.18 to 0.20 dB/km. Old fibre, numerous high-loss splices and connectors worn by years of service all raise the effective attenuation of the path.

Installation documentation from ten years ago is not a reliable basis for planning the reach of a coherent module.
Always measure the current path parameters with an OTDR.
The first is the number of ROADM nodes. Each reconfigurable optical add-drop multiplexer introduces signal loss, so a 500 km route with five ROADM nodes has a completely different effective optical budget than a 500 km point-to-point route. In networks with many intermediate nodes, the range of higher modulation modes drops, and that is precisely when 8QAM or QPSK becomes the right choice.

The second is fiber quality and the number of splices. The catalog attenuation of new G.652.D fiber in the C-band is around 0.18 to 0.20 dB/km, but old fiber, numerous high-loss splices, and connectors after years of operation increase the effective path attenuation and shorten the range. Data from installation documentation from ten years ago is not a reliable basis for planning the range of a 400G coherent module, which is why we always measure current path parameters using an OTDR.

Reach for typical operator routes in Poland and CEE

up to 30 km
DCI in Warsaw, Krakow or Wroclaw. Reach with plenty of margin, full throughput, no amplifiers.
400G DP-16QAM
full throughput
30 to 80 km
Carrier metro in a large city. Reach within the nominal range for both formats, and with new equipment 800G as well.
400G or 800G DP-16QAM
nominal range
80 to 200 km
Regional city-to-city route, for example Warsaw to Lodz or Krakow to Katowice.
400G DP-16QAM or 300G DP-8QAM
8QAM with many nodes or older fibre
200 to 500 km
Backbone route between major cities, for example Warsaw to Gdansk or Krakow to Wroclaw.
300G DP-8QAM
QPSK with many ROADM nodes
500 to 1000 km
Cross-border links within CEE, for example Poland to Czechia or Poland to Germany. OSNR verification is mandatory.
200G DP-QPSK
8QAM on a very good path
over 1000 km
Ultra long haul routes. Each one requires an individual optical budget analysis.
adaptive PCS modes
200G DP-QPSK or lower

400ZR vs. OpenZR+, a difference not visible in the name


The OIF 400ZR standard defines a single mode: 400G DP-16QAM up to 120 km. A module compliant only with 400ZR will not provide more without replacing the hardware. The OpenZR+ MSA standard defines many modes, from 100G to 400G, with QPSK, 8QAM, and 16QAM modulations and reaches of 600 km and beyond. One of the required modes is compatible with OIF 400ZR, so an OpenZR+ module supports everything 400ZR does, and much more.

GBC Photonics modules are compliant with both standards. The 400ZR module is a good solution for DCI networks where all routes are under 120 km and will remain so. The OpenZR+ module is the right choice for networks with routes of varying lengths, as you keep one type of module in stock and configure it differently for each route.

FAQ: coherent module reach

It is not a single number but a function of the modulation mode. The same physical module reaches up to 120 km in 400G DP-16QAM, up to 600 km in 300G DP-8QAM and over 1000 km in 200G DP-QPSK. Changing mode is a configuration change, not a hardware swap. You pay for it in throughput: 16QAM gives the full 400G, 8QAM three quarters, QPSK half. The final reach also depends on path quality, the number of intermediate nodes and the OSNR at the receiver, which is why the optical budget is calculated separately for every route.
Because it comes down to the distance between symbols in the constellation. 16QAM encodes four bits per symbol, so the symbols sit close together and even modest noise causes read errors over a long route. QPSK encodes two bits per symbol, the symbols are far apart, so the signal tolerates far greater degradation and travels further. 8QAM, with three bits per symbol, sits between them. QPSK has the largest OSNR margin of the standard coherent modulation modes, which translates into resilience across repeated passes through ROADM nodes and EDFA amplifiers.
For DCI up to 30 km and metro up to 80 km, choose 400G DP-16QAM: you get reach with margin and full throughput without amplifiers. For regional routes of 80 to 200 km, such as Warsaw to Lodz, 16QAM works nearer the lower bound, while many nodes or older fibre make 300G DP-8QAM the safer call. For backbone routes of 200 to 500 km, such as Warsaw to Gdansk, 300G DP-8QAM is the standard. For cross-border CEE links of 500 to 1000 km, 200G DP-QPSK is the right choice and OSNR verification on the specific path is mandatory. Above 1000 km you move into adaptive PCS modes, and every such route needs individual analysis.
Probabilistic Constellation Shaping lets the effective modulation mode be tuned continuously instead of jumping between predefined values. The module moves along the whole scale and optimises the trade-off between throughput and reach by itself, based on measured OSNR. In practice that means a smooth curve of reach against throughput rather than a stepwise choice. An 800G module with PCS reaches 80 to 120 km in 800G DP-16QAM, 300 to 500 km in 600G DP-8QAM, and on longer routes drops to 400G or below while holding a far greater reach.
Usually for two reasons. The first is the number of ROADM nodes, because every reconfigurable optical add-drop multiplexer introduces loss. A 500 km route with five nodes has a completely different effective optical budget than the same route point to point, and on such networks the reach of higher modulation modes drops noticeably. The second is fibre quality and the number of splices. Catalogue attenuation for new G.652.D fibre in the C-band is roughly 0.18 to 0.20 dB/km, but old fibre, numerous high-loss splices and connectors worn by years of service raise the effective attenuation of the path and shorten the reach.
Not if the documentation is a few years old. Data from an installation ten years ago is not a reliable basis for planning the reach of a 400G coherent module, because the path has changed since. Splices were added during faults and rebuilds, connectors aged, and each of those raises the effective attenuation. We always measure the current path parameters with an OTDR before selecting a modulation mode. The measurement takes a few hours, and skipping it can cost a week of debugging after deployment, or force you to drop throughput on a link that is already live.
It depends on how varied your routes are. The OIF 400ZR standard defines a single mode, 400G DP-16QAM up to 120 km, and a module compliant only with that will give no more without a hardware swap. It is a good fit for a DCI network where every route is under 120 km and will stay that way. OpenZR+ defines many modes, from 100G to 400G, with QPSK, 8QAM and 16QAM modulation and reaches of 600 km and beyond, and one of its required modes is the one compatible with 400ZR. For networks with routes of differing lengths, OpenZR+ is the right choice, because you keep one module type in stock and configure it differently for each route.
Yes, with the right modulation mode and a good path. In production tests on the Poznan to Frankfurt route, close to 1000 km on a Polish backbone operator's infrastructure, GBC Photonics 400G modules achieved stable 300G transmission in 8QAM mode, without external transponders, straight from the router. It is worth being precise about what that means in practice: at that distance you do not get the full 400G but 300G, because that is exactly the trade-off between throughput and reach. Every route of that length needs its optical budget calculated individually before deployment.
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